\\n\\n
Released this past November, the list is based on data collected from the Web of Science and highlights some of the world’s most influential scientific minds by naming the researchers whose publications over the previous decade have included a high number of Highly Cited Papers placing them among the top 1% most-cited.
\\n\\nWe wish to congratulate all of the researchers named and especially our authors on this amazing accomplishment! We are happy and proud to share in their success!
Note: Edited in March 2021
\\n"}]',published:!0,mainMedia:{caption:"Highly Cited",originalUrl:"/media/original/117"}},components:[{type:"htmlEditorComponent",content:'IntechOpen is proud to announce that 191 of our authors have made the Clarivate™ Highly Cited Researchers List for 2020, ranking them among the top 1% most-cited.
\n\nThroughout the years, the list has named a total of 261 IntechOpen authors as Highly Cited. Of those researchers, 69 have been featured on the list multiple times.
\n\n\n\nReleased this past November, the list is based on data collected from the Web of Science and highlights some of the world’s most influential scientific minds by naming the researchers whose publications over the previous decade have included a high number of Highly Cited Papers placing them among the top 1% most-cited.
\n\nWe wish to congratulate all of the researchers named and especially our authors on this amazing accomplishment! We are happy and proud to share in their success!
Note: Edited in March 2021
\n'}],latestNews:[{slug:"intechopen-supports-asapbio-s-new-initiative-publish-your-reviews-20220729",title:"IntechOpen Supports ASAPbio’s New Initiative Publish Your Reviews"},{slug:"webinar-introduction-to-open-science-wednesday-18-may-1-pm-cest-20220518",title:"Webinar: Introduction to Open Science | Wednesday 18 May, 1 PM CEST"},{slug:"step-in-the-right-direction-intechopen-launches-a-portfolio-of-open-science-journals-20220414",title:"Step in the Right Direction: IntechOpen Launches a Portfolio of Open Science Journals"},{slug:"let-s-meet-at-london-book-fair-5-7-april-2022-olympia-london-20220321",title:"Let’s meet at London Book Fair, 5-7 April 2022, Olympia London"},{slug:"50-books-published-as-part-of-intechopen-and-knowledge-unlatched-ku-collaboration-20220316",title:"50 Books published as part of IntechOpen and Knowledge Unlatched (KU) Collaboration"},{slug:"intechopen-joins-the-united-nations-sustainable-development-goals-publishers-compact-20221702",title:"IntechOpen joins the United Nations Sustainable Development Goals Publishers Compact"},{slug:"intechopen-signs-exclusive-representation-agreement-with-lsr-libros-servicios-y-representaciones-s-a-de-c-v-20211123",title:"IntechOpen Signs Exclusive Representation Agreement with LSR Libros Servicios y Representaciones S.A. de C.V"},{slug:"intechopen-expands-partnership-with-research4life-20211110",title:"IntechOpen Expands Partnership with Research4Life"}]},book:{item:{type:"book",id:"8879",leadTitle:null,fullTitle:"Emerging Trends in Mechatronics",title:"Emerging Trends in Mechatronics",subtitle:null,reviewType:"peer-reviewed",abstract:"Mechatronics is a multidisciplinary branch of engineering combining mechanical, electrical and electronics, control and automation, and computer engineering fields. The main research task of mechatronics is design, control, and optimization of advanced devices, products, and hybrid systems utilizing the concepts found in all these fields. The purpose of this special issue is to help better understand how mechatronics will impact on the practice and research of developing advanced techniques to model, control, and optimize complex systems. The special issue presents recent advances in mechatronics and related technologies. The selected topics give an overview of the state of the art and present new research results and prospects for the future development of the interdisciplinary field of mechatronic systems.",isbn:"978-1-78984-320-0",printIsbn:"978-1-78984-319-4",pdfIsbn:"978-1-83968-505-7",doi:"10.5772/intechopen.81944",price:119,priceEur:129,priceUsd:155,slug:"emerging-trends-in-mechatronics",numberOfPages:228,isOpenForSubmission:!1,isInWos:null,isInBkci:!1,hash:"382fa5b9568d15939b7249bd46f2d09c",bookSignature:"Aydin Azizi",publishedDate:"January 15th 2020",coverURL:"https://cdn.intechopen.com/books/images_new/8879.jpg",numberOfDownloads:8217,numberOfWosCitations:5,numberOfCrossrefCitations:7,numberOfCrossrefCitationsByBook:0,numberOfDimensionsCitations:12,numberOfDimensionsCitationsByBook:0,hasAltmetrics:1,numberOfTotalCitations:24,isAvailableForWebshopOrdering:!0,dateEndFirstStepPublish:"October 10th 2018",dateEndSecondStepPublish:"March 1st 2019",dateEndThirdStepPublish:"June 10th 2019",dateEndFourthStepPublish:"June 17th 2019",dateEndFifthStepPublish:"September 10th 2019",currentStepOfPublishingProcess:5,indexedIn:"1,2,3,4,5,6,7",editedByType:"Edited by",kuFlag:!0,featuredMarkup:null,editors:[{id:"234387",title:"Prof.",name:"Aydin",middleName:null,surname:"Azizi",slug:"aydin-azizi",fullName:"Aydin Azizi",profilePictureURL:"https://mts.intechopen.com/storage/users/234387/images/system/234387.jpg",biography:"Dr. Aydin Azizi holds a PhD degree in Mechanical Engineering-Mechatronics, an MSc in Mechatronics and a BSc in Mechanical Engineering-Heat & Fluids. Certified as an official instructor for the Siemens Mechatronic Certification Program (SMSCP) and the editor of the book series Emerging Trends in Mechatronics publishing by Springer Nature Group, he currently serves as a Senior Lecturer at the Oxford Brookes University. His current research focuses on investigating and developing novel techniques to model, control and optimize complex systems. Dr. Azizi’s areas of expertise include Control & Automation, Artificial Intelligence and Simulation Techniques. Dr. Azizi is the recipient of the National Research Award of Oman for his AI-focused research, DELL EMC’s “Envision the Future” competition award in IoT for “Automated Irrigation System”, and ‘Exceptional Talent’ recognition by the British Royal Academy of Engineering.",institutionString:"German University of Technology in Oman",position:null,outsideEditionCount:0,totalCites:0,totalAuthoredChapters:"0",totalChapterViews:"0",totalEditedBooks:"1",institution:{name:"Oxford Brookes University",institutionURL:null,country:{name:"United Kingdom"}}}],equalEditorOne:null,equalEditorTwo:null,equalEditorThree:null,coeditorOne:null,coeditorTwo:null,coeditorThree:null,coeditorFour:null,coeditorFive:null,topics:[{id:"820",title:"Mechatronics",slug:"mechanical-engineering-mechatronics"}],chapters:[{id:"68439",title:"Intelligent Control System of Generated Electrical Pulses at Discharge Machining",doi:"10.5772/intechopen.88454",slug:"intelligent-control-system-of-generated-electrical-pulses-at-discharge-machining",totalDownloads:643,totalCrossrefCites:1,totalDimensionsCites:2,hasAltmetrics:0,abstract:"The book chapter provides a comprehensive set of knowledge in the field of intelligent control of generated electrical impulses for wire electrical discharge machining. With the designed intelligent electrical pulse control system, the stability of the electroerosion process, as well as the increased surface quality after wire electrical discharge machining (WEDM), can be significantly enhanced compared to standard impulse control systems. The aim of the book chapter is also to point out the importance of monitoring in addition to the established power characteristics of generated electrical pulses, such as voltage and current, as well as other performance parameters. The research was mainly focused on those parameters that have a significant impact on the quality of the machined surface. The own’s theoretical and knowledge base was designed to enrich the new approach in increasing the geometric accuracy of the machined surface, as well as the overall efficiency of the electroerosion process for WEDM through intelligent control of generated electrical pulses.",signatures:"Ľuboslav Straka and Gabriel Dittrich",downloadPdfUrl:"/chapter/pdf-download/68439",previewPdfUrl:"/chapter/pdf-preview/68439",authors:[{id:"295911",title:"Associate Prof.",name:"Ľuboslav",surname:"Straka",slug:"luboslav-straka",fullName:"Ľuboslav Straka"},{id:"296547",title:"MSc.",name:"Gabriel",surname:"Dittrich",slug:"gabriel-dittrich",fullName:"Gabriel Dittrich"}],corrections:null},{id:"68826",title:"Conceptual Design Evaluation of Mechatronic Systems",doi:"10.5772/intechopen.88643",slug:"conceptual-design-evaluation-of-mechatronic-systems",totalDownloads:825,totalCrossrefCites:0,totalDimensionsCites:1,hasAltmetrics:0,abstract:"The definition of the conceptual design phase has been expressed in many different phrasings, but all of them lead to the same conclusion. The conceptual design phase is of the highest importance during the design process, due to the fact that many crucial decisions concerning the progress of the design need to be taken with very little to none information and knowledge about the design object. This implies to very high uncertainty about the effects that these decisions will have later on. During the conceptual design of a mechatronic system, the system to be designed is modeled, and several solutions (alternatives) to the design problem are generated and evaluated so that the most fitting one to the design specifications and requirements is chosen. The purpose of this chapter is to mention some of the most widely used methods of system modeling, mainly through hierarchical representations of their subsystems, and also to present a method for the generation and evaluation of the design alternatives.",signatures:"Eleftherios Katrantzis, Vassilis C. Moulianitis and Kanstantsin Miatliuk",downloadPdfUrl:"/chapter/pdf-download/68826",previewPdfUrl:"/chapter/pdf-preview/68826",authors:[{id:"231128",title:"Dr.",name:"Kanstantsin",surname:"Miatliuk",slug:"kanstantsin-miatliuk",fullName:"Kanstantsin Miatliuk"},{id:"297066",title:"Dr.",name:"Lefteris",surname:"Katrantzis",slug:"lefteris-katrantzis",fullName:"Lefteris Katrantzis"},{id:"297247",title:"Prof.",name:"Vassilis",surname:"Moulianitis",slug:"vassilis-moulianitis",fullName:"Vassilis Moulianitis"}],corrections:null},{id:"68480",title:"Mechatronics for the Design of Inspection Robotic Systems",doi:"10.5772/intechopen.88489",slug:"mechatronics-for-the-design-of-inspection-robotic-systems",totalDownloads:788,totalCrossrefCites:0,totalDimensionsCites:0,hasAltmetrics:1,abstract:"Recent trends show how mobile robots are being widely used in security and inspection tasks. This chapter reports the requirements, characteristics, and development of mobile robotic systems for security and inspection tasks to demonstrate the feasibility of mechatronic solutions for inspection of sites of interest. The development of such systems can be exploited as a modular plug-in kit to be installed on a mobile system, with the aim to be used for inspection and monitoring, introducing high efficiency, quality, and repeatability in the addressed sector. The interoperability of sensors with wireless communication constitutes a smart sensor toolkit and a smart sensor network with powerful functions to be used efficiently for inspection purposes. A tele-operated robot will be taken as case of study; it is controlled by mobile phone and equipped with internal and external sensors, which are efficiently managed by the designed mechatronic control scheme.",signatures:"Pierluigi Rea and Erika Ottaviano",downloadPdfUrl:"/chapter/pdf-download/68480",previewPdfUrl:"/chapter/pdf-preview/68480",authors:[{id:"56566",title:"Dr.",name:"Pierluigi",surname:"Rea",slug:"pierluigi-rea",fullName:"Pierluigi Rea"},{id:"80997",title:"Dr.",name:"Erika",surname:"Ottaviano",slug:"erika-ottaviano",fullName:"Erika Ottaviano"}],corrections:null},{id:"68177",title:"Interaction of Mechatronic Modules in Distributed Technological Installations",doi:"10.5772/intechopen.88059",slug:"interaction-of-mechatronic-modules-in-distributed-technological-installations",totalDownloads:622,totalCrossrefCites:2,totalDimensionsCites:2,hasAltmetrics:0,abstract:"The article deals with the interaction of mechatronic devices in real time through events and messages. The interaction of distributed network devices is necessary to coordinate their work, including synchronization when implementing a distributed algorithm. The approach in the development of a distributed control system (DCS) for mechatronic devices based on the IEC 61499 standard has been analyzed. Using only a LAN for interaction purposes is not always justified, since messages transmitted over a LAN do not provide transmission determinism. To eliminate this problem, a fast local network is needed, which would not utilize resources of the main computer and hardware (e.g., based on the model of terminal machines) to carry out a network communication. It is proposed to implement LAN controllers on the field-programmable gate array (FPGA) platform. Data-strobe coding (DS coding) with a signal level of LVDS was used for keeping the transmitted data intact and improving the overall reliability of the systems.",signatures:"Valery A. Kokovin",downloadPdfUrl:"/chapter/pdf-download/68177",previewPdfUrl:"/chapter/pdf-preview/68177",authors:[{id:"296770",title:"Dr.",name:"Valery",surname:"Kokovin",slug:"valery-kokovin",fullName:"Valery Kokovin"}],corrections:null},{id:"67325",title:"Impact Analysis of MR-Laminated Composite Structures",doi:"10.5772/intechopen.86466",slug:"impact-analysis-of-mr-laminated-composite-structures",totalDownloads:579,totalCrossrefCites:0,totalDimensionsCites:0,hasAltmetrics:0,abstract:"Laminated composite structures are being used in many applications, including aerospace, automobiles, and civil engineering applications, due to their high stiffness to weight ratio. However, composite structures suffer from low ductility and sufficient flexibility to resist against dynamic, particularly impact loadings. Recently, a new generation of laminated composite structures has been developed in which some layers have been filled fully or partially with magnetorheological (MR) fluids; hereafter we call them MR-laminated structures. The present article investigates the effects of MR fluid layers on vibration characteristics and specifically on impact loadings of the laminated composite beams. Experimental works have been conducted to study the dynamic performance of the MR-laminated beams.",signatures:"Abolghassem Zabihollah, Jalil Naji and Shahin Zareie",downloadPdfUrl:"/chapter/pdf-download/67325",previewPdfUrl:"/chapter/pdf-preview/67325",authors:[{id:"290702",title:"Dr.",name:"Abolghassem",surname:"Zabihollah",slug:"abolghassem-zabihollah",fullName:"Abolghassem Zabihollah"}],corrections:null},{id:"66272",title:"Applications of Artificial Intelligence Techniques in Optimizing Drilling",doi:"10.5772/intechopen.85398",slug:"applications-of-artificial-intelligence-techniques-in-optimizing-drilling",totalDownloads:1147,totalCrossrefCites:2,totalDimensionsCites:3,hasAltmetrics:0,abstract:"Artificial intelligence has transformed the industrial operations. One of the important applications of artificial intelligence is reducing the computational costs of optimization. Various algorithms based on their assumptions to solve problems have been presented and investigated, each of which having assumptions to solve the problems. In this chapter, firstly, the concept of optimization is fully explained. Then, an artificial bee colony (ABC) algorithm is used on a case study in the drilling industry. This algorithm optimizes the problem of study in combination with ANN modeling. At the end, various models are fully developed and discussed. The results of the algorithm show that by better understanding the drilling data, the conditions can be improved.",signatures:"Mohammadreza Koopialipoor and Amin Noorbakhsh",downloadPdfUrl:"/chapter/pdf-download/66272",previewPdfUrl:"/chapter/pdf-preview/66272",authors:[{id:"287905",title:"Ph.D. Student",name:"Mohammadreza",surname:"Koopialipoor",slug:"mohammadreza-koopialipoor",fullName:"Mohammadreza Koopialipoor"},{id:"287907",title:"Mr.",name:"Amin",surname:"Noorbakhsh",slug:"amin-noorbakhsh",fullName:"Amin Noorbakhsh"}],corrections:null},{id:"68663",title:"Design and Analysis of SMA-Based Tendon for Marine Structures",doi:"10.5772/intechopen.88451",slug:"design-and-analysis-of-sma-based-tendon-for-marine-structures",totalDownloads:658,totalCrossrefCites:0,totalDimensionsCites:1,hasAltmetrics:0,abstract:"A tension-leg platform (TLP), as an offshore structure, is a vertically moored floating structure, connecting to tendon groups, fixed to subsea by foundations, to eliminate its vertical movements. TLPs are subjected to various non-deterministic loadings, including winds, currents, and ground motions, keeping the tendons under ongoing cyclic tensions. The powerful loads can affect the characteristics of tendons and cause permanent deformation. As a result of exceeding the strain beyond the elastic phase of the tendons, it makes unbalancing on the floated TLPs. Shape memory alloy (SMA)-based tendons due to their superelasticity properties may potentially resolve such problem in TLP structures. In the present work, performance and functionality of SMA wire, as the main component of SMA-based tendon under cyclic loading, have been experimentally investigated. It shows a significant enhancement in recovering large deformation and reduces the amount of permanent deformation.",signatures:"Shahin Zareie and Abolghassem Zabihollah",downloadPdfUrl:"/chapter/pdf-download/68663",previewPdfUrl:"/chapter/pdf-preview/68663",authors:[{id:"290702",title:"Dr.",name:"Abolghassem",surname:"Zabihollah",slug:"abolghassem-zabihollah",fullName:"Abolghassem Zabihollah"},{id:"289897",title:"Mr.",name:"Shahin",surname:"Zareie",slug:"shahin-zareie",fullName:"Shahin Zareie"},{id:"302911",title:"Dr.",name:"M.Shahria",surname:"Alam",slug:"m.shahria-alam",fullName:"M.Shahria Alam"}],corrections:null},{id:"67315",title:"The Recent Advances in Magnetorheological Fluids-Based Applications",doi:"10.5772/intechopen.86178",slug:"the-recent-advances-in-magnetorheological-fluids-based-applications",totalDownloads:897,totalCrossrefCites:2,totalDimensionsCites:3,hasAltmetrics:0,abstract:"The magnetorheological fluids (MRF) are a generation of smart fluids with the ability to alter their variable viscosity. Moreover, the state of the MRF can be switched from the semisolid to the fluid phase and vice versa upon applying or removing the magnetic field. The fast response and the controllability are the main features of the MRF-based systems, which make them suitable for applications with high sensitivity and controllability requirements. Nowadays, MRF-based systems are rapidly growing and widely being used in many industries such as civil, aerospace, and automotive. This study presents a comprehensive review to investigate the fundamentals of MRF and manufacturing and applications of MRF-based systems. According to the existing works and current and future demands for MRF-based systems, the trend for future research in this field is recommended.",signatures:"Shahin Zareie and Abolghassem Zabihollah",downloadPdfUrl:"/chapter/pdf-download/67315",previewPdfUrl:"/chapter/pdf-preview/67315",authors:[{id:"289897",title:"Mr.",name:"Shahin",surname:"Zareie",slug:"shahin-zareie",fullName:"Shahin Zareie"}],corrections:null},{id:"69064",title:"Hysteresis Behavior of Pre-Strained Shape Memory Alloy Wires Subject to Cyclic Loadings: An Experimental Investigation",doi:"10.5772/intechopen.88452",slug:"hysteresis-behavior-of-pre-strained-shape-memory-alloy-wires-subject-to-cyclic-loadings-an-experimen",totalDownloads:668,totalCrossrefCites:0,totalDimensionsCites:0,hasAltmetrics:0,abstract:"Shape memory alloys (SMAs) are a class of smart materials with the ability to recover their initial shape after releasing the applied load and experiencing a relatively large amount of strain. However, sequential loading and unloading which is an unavoidable issue in many applications significantly reduces the strain recovery of SMA wires. In the present work, experimental tests have been performed to study the pre-strain effect of SMA wires on hysteresis behavior of SMA under cyclic loadings. The effects of cyclic loading on austenite and martensite properties have been investigated. SMA wires with diameter of 1.5 mm and length of 560 mm subjected to about 1000 cycles show about 3 mm residual deformation, which is approximately equal to 0.5% residual strain. It is observed that applying 1.7% pre-strain on the SMA wire fully eliminates the residual strain due to cyclic loading.",signatures:"Shahin Zareie and Abolghassem Zabihollah",downloadPdfUrl:"/chapter/pdf-download/69064",previewPdfUrl:"/chapter/pdf-preview/69064",authors:[{id:"289897",title:"Mr.",name:"Shahin",surname:"Zareie",slug:"shahin-zareie",fullName:"Shahin Zareie"}],corrections:[{id:"71025",title:"Erratum - Hysteresis Behavior of Pre-Strained Shape Memory Alloy Wires Subject to Cyclic Loadings: An Experimental Investigation",doi:null,slug:"erratum-hysteresis-behavior-of-pre-strained-shape-memory-alloy-wires-subject-to-cyclic-loadings-an-e",totalDownloads:null,totalCrossrefCites:null,correctionPdfUrl:null}]},{id:"66409",title:"Interactional Modeling and Optimized PD Impedance Control Design for Robust Safe Fingertip Grasping",doi:"10.5772/intechopen.85531",slug:"interactional-modeling-and-optimized-pd-impedance-control-design-for-robust-safe-fingertip-grasping",totalDownloads:759,totalCrossrefCites:0,totalDimensionsCites:0,hasAltmetrics:0,abstract:"Dynamic and robust control of fingertip grasping is essential in robotic hand manipulation. This study introduces detailed kinematic and dynamic mathematical modeling of a two-fingered robotic hand, which can easily be extended to a multi-fingered robotic hand and its control. The Lagrangian technique is applied as a common procedure to obtain the complete nonlinear dynamic model. Fingertip grasping is considered in developing the detailed model. The computed torque controller of six proportional derivative (PD) controllers, which use the rotation angle of the joint variables, is proposed to linearize the hand model and to establish trajectory tracking. An impedance controller of optimized gains is suggested in the control loop to regulate the impedance of the robotic hand during the interaction with the grasped object in order to provide safe grasping. In this impedance controller, the gains are designed by applying a genetic algorithm to reach minimum contact position and velocity errors. The robustness against disturbances is achieved within the overall control loop. A computer program using MATLAB is used to simulate, monitor, and test the interactional model and the designed controllers.",signatures:"Izzat Al-Darraji, Ali Kılıç and Sadettin Kapucu",downloadPdfUrl:"/chapter/pdf-download/66409",previewPdfUrl:"/chapter/pdf-preview/66409",authors:[{id:"293436",title:"Dr.",name:"Izzat",surname:"Al-Darraji",slug:"izzat-al-darraji",fullName:"Izzat Al-Darraji"},{id:"293446",title:"Dr.",name:"Ali",surname:"Kılıç",slug:"ali-kilic",fullName:"Ali Kılıç"},{id:"293447",title:"Prof.",name:"Sadettin",surname:"Kapucu",slug:"sadettin-kapucu",fullName:"Sadettin Kapucu"}],corrections:null},{id:"69400",title:"Research on Key Quality Characteristics of Electromechanical Product Based on Meta-Action Unit",doi:"10.5772/intechopen.89481",slug:"research-on-key-quality-characteristics-of-electromechanical-product-based-on-meta-action-unit",totalDownloads:631,totalCrossrefCites:0,totalDimensionsCites:0,hasAltmetrics:0,abstract:"Electromechanical products have many quality characteristics, representing their quality. In addition, there are long-existed quality problems of electromechanical products, such as poor accuracy, short precision life, large fluctuations in performance, frequently failing, and so on. Based on meta-action unit (MU) for electromechanical products, this book chapter proposes a key quality characteristic control method, which provides theoretical and technical support for essentially guaranteeing the complete machine’s quality. The formation mechanisms of MU’s four key quality characteristics (precision, precision life, performance stability, and reliability) are studied. Moreover, we introduce an overview of key quality characteristic control methods based on MU. 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An RF MEMS metal-contact switch is an emerging technology that has replaced the semiconductor field-effect transistors (such as GaAs FETs), PIN diode switches/Schottky diodes and electromagnetic relays [1, 2]. The metal-contact MEMS switches are not only used in reconfigurable antenna structures but also in switching networks, satellite systems, filters and automated test equipments from 0.1 to 40 GHz applications [3].
\nMEMS RF switches demonstrate exceptional performance in upper range of frequency as compared to the traditional semiconductor RF switching microelectronics technology. The advantages of MEMS RF switches over semiconductor switches are batch fabrication (that involves lithography-based micromachining, fabricated on either quartz or automated mark high-resistivity Si or GaAs wafers), low insertion loss (around 0.2 dB), high isolation (around 70 dB), small off-state capacitances (2–4 femto Farads), high linearity and low power consumption (almost zero power). Also, metal semiconductor (MES)-FET switching in the cold-FET mode requires almost no control power. Some commercial cold-FETs can switch at 2.3 V [4–7].
\nPerformance comparison of the various commercially available RF switches is shown in Table 1.
Parameter of switch characteristics | MEMS | GaAs/metal semiconductor (MES)—field-effect transistor (FET) | PIN-diode | Electromechanical relay (EMR) |
---|---|---|---|---|
Voltage (V) | 10–75 | 3–5; 2.3 (commercial cold-FETs) | ±2.5–5 | 3–2 |
Current (mA) | Almost zero | Almost zero | 0–20 | 15–150 |
Power consumption (mW) | 0.05–0.1 (negligible power consumption) | 0.05–0.1; no power consumption in commercial cold-FETs | 5–95 | <380 |
Switching time | 1–400 μs | 1–120 ns | 10–120 ns | >1 ms |
Isolation in OFF condition (1–10 GHz) (in dB) | >45 | 15–25 | >35 | >40 |
Insertion loss in ON condition (1–10 GHz) (in dB) | 0.05–0.2 | 0.4–2.5 | 0.3–1.2 | <0.3 |
Despite all of the advantages discussed, MEMS switches also have some problems associated with them. The main issues at present are relatively low speed (around 3–40 μs), moderate voltage or high current initiative (electrostatic actuated switches require 5–80 V for consistent operation, whereas magnetic/thermal switches can be activated with 2–6 V but require 9–105 mA of current supply), reliability (0.2–4 billion cycles), high packaging cost and low power handling (<200 mW) and therefore, they are rarely commercially available [4, 7].
\nOptimization of MEMS switches had played a major impact in RF circuits [10–12]. The microstrip patch antennas (MSA) are preferred for wireless applications due to their low-profile structure, easy to manufacture structure, wide and multiband behavior [13, 14]. Different techniques have been used to achieve multi-band operation for MSA. Some of the techniques employed variation in physical dimensions of feed line, modification of the effective length of antenna using slot, implementation of defected ground structure and use of the switching device within the antennas [15–17].
\nFurther, the fabrication process of the RA is a difficult multi-layered task and an effective integration needs cautious planning for every single stage in the direction not to fade the proposed antenna’s performance. Among those stages, the utmost critical procedures [4, 13] can be summarized in:
\nAll the aforementioned issues can be avoided if the procedure is well organized; otherwise, it will affect the electromagnetic characteristics as well as input impedance of the antenna [4, 13].
\nThe motivation of this research work is a great effort put in emerging RF-switch-based-reconfigurable antenna designs and procedures capable of facing specific challenges such as low power consumption, simplicity, robustness as well as small size. The scope of this work describes a two-way application: (a) design of an electrostatic actuated metal-contact cantilever beam switch and (b) development of a grid-based numerical optimization method based on pattern search (PS) technique. Further, some important nature-inspired-optimization algorithms and numerical-based-optimization algorithms are also studied that can be helpful to improve complex RF circuits like switches and antennas. The design of cantilever beam microswitch is identified for applications in microwave multiband reconfigurable antennas. A novel approach of PS optimization method is used here to optimize the isolation, insertion and return loss of metal-contact microswitch. Finally, all the above-mentioned procedure is combined together that creates a slot-dual frequency band reconfigurable antenna configuration.
Optimization refers to maximizing or minimizing the objective function or fitness function. In today’s scenario, the evolutionary optimization techniques that can be used to optimize even non-differentiable and non-linear types of problems are most commonly used. These techniques are based on intensifying the search (w.r.t. neighborhood) and diversifying the range (of solutions). Some of these significant algorithms will be discussed in this section:
\nA very brief comparison of these optimization techniques has been discussed in Table 2 (more experiments need to be done for GbSA as it has not been used in so many cases).
Feature technique | Inspired by | Time for convergence/optimization | Accuracy | Suitability |
---|---|---|---|---|
Flocking behavior of birds | Little bit more time (because of overhead) | Average | Even for complex problems | |
Natural evolution | Little bit more time (because of overhead) | Good | Even for complex problems | |
Behavior of social ants | Less time | Average | Even for complex problems | |
Flashing behavior of the fireflies | Less time | Good | Even for complex problems | |
Hatching behavior of cuckoo | Quite less time | Good | Even for complex problems | |
Echo behavior of bats | Little bit more time (because of being fallen into local optimization sometimes) | Average | Even for complex problems | |
Behavior of honeybee in food foraging | Less time | Good | Even for complex problems | |
Nature of music | Less time | Average | For simple problems | |
Distribution of plants and animals in habitats | Less time | Good | Even for complex problems | |
Natural laws concerned with the evolution of the individuals | Less time | Average | Even for complex problems | |
Annealing process in solids | Higher time | Good | Even for complex problems | |
Colonization of the invasive weeds | Little high | Low | Even for complex problems | |
Searching around mesh | Less time | Good | Even for complex problems |
Comparison of important optimization techniques.
A very brief review of the advantages and disadvantages of the different optimization techniques discussed above can be shown in Table 3.
Optimization technique | Advantages | Disadvantages |
---|---|---|
1. Particles preserve the good solutions (memory characteristic) 2. Each member is involved in the exploitation of the solution space | 1. Quality of results may not be too good as the guided random process is the basis 2. Very sensitive to the tuning of parameters | |
1. Very useful for the large or/and unknown search space 2. Solution becomes more and more optimal with passage of time | 1. Solution is prone to fall in local optimum if the fitness (cost) function is not properly defined 2. Not a very good technique for the constraint-based optimization | |
1. Adaptable to real time changes 2. Has property of distributed computing | 1. Convergence is difficult to prove in many cases 2. Solution may fall into local optimum in a few cases | |
1. High speed and performs good even at high levels of noise 2. Performs better with the increase in population size | 1. Unable to get rid of local optima while doing local search (in a very few situations) 2. Unable to preserve the good solution (no memory) | |
1. Tendency to be trapped in local optimum is very very less and hence faster than the other methods 2. Easier to implement as it depends upon population and probability only | 1. Little less efficiency because of inability to change parameters 2. Number of iterations required may be quite large | |
1. Very efficient even for the multi-constraint problems 2. Can be used to derive many algorithms by changing some of its parameters | 1. Little less convergence accuracy 2. Not so good for the multi-dimensional problems because of fast initial convergence | |
1. Can intensify and diversify the search quite effectively 2. Gives optimum results in reasonable time | 1. Is yet to prove its worth in so many real-life applications 2. Some mathematical justifications are yet to be done in this technique | |
1. Does not need any initial value resulting in convergence to a global optimum in a much better way 2. Parameters need not to be fine tuned | 1. Mainly useful only for a single objective function 2. Very poor in case of local search | |
1. Has high diversity resulting in a good solution 2. Preserves the good solutions (memory characteristic) | 1. Less efficient in exploitation of the solution 2. Sensitive to the tuning of some parameters | |
1. Efficient memory utilization 2. Can easily be implemented in parallel | 1. Large computation needed to reach the optimal solution 2. Less accurate | |
1. Ability to approach the global optimal solution in most of the cases 2. Simple to code even for the complicated and unordered data/problems | 1. Very much time-consuming because the fitness function needs more computation 2. Parameters have to be very much fine-tuned | |
1. Allows all plants to take part in reproduction 2. Shows high stability and good convergence | 1. Little scope of improvement in the success rate of this algorithm 2. Is yet to prove its importance in many real-life situations | |
1. Very fast and reliable method 2. Very accurate method as the mesh size may be reduced to search around the point with higher resolution | 1. Wrong selection of starting point may result in sticking around local minima |
Advantages and disadvantages of important optimization techniques.
In this research work, PSearch algorithm will be used for the synthesis and optimization of the switch because of its speed, reliability and accuracy. Although PSearch is a much faster method of reaching the acceptable results, but it can be improved more by selecting the different search directions depending upon the objective function to be minimized.
Initially, metal MEMS switch is analyzed with the help of software coventorware. RF MEMS switches in terms of multi-Physics properties have been studied, designed and simulated for RA design. The multi-Physics characteristics for MEMS switches generally include the squeeze film damping effect/displacement time, activation/pull-in voltage, electrostatic force and on-off capacitance ratio.
\nThe lumped/equivalent circuits of aforementioned MEMS switch are generated by using Advanced Design System (ADS) software with the help of Hspice model. After generation of lumped elements, the mathematical analysis and verification of post-processing simulation results of switches are performed. Further, the ANSYS high frequency structure simulator (HFSS) software is used to find out the electromagnetic (EM) characteristics of MEMS switch. In case of switch, the important EM post-parameters like insertion loss (IL), return loss (RL) and isolation are studied. This software provides the in-built optimization tools which are also considered to optimize the EM results.
\nProposed MEMS switch here moves at one end in the downward direction and is fixed at other end of the beam. The cantilever beam makes a metal contact with the transmission line as it moves in down direction in response of electrostatic actuation. When beam metal part connects the two ports of transmission line, switch is called in ON position and when beam metal part disconnects the two ports of transmission line, the switch is called in OFF position [46]. The presented MEMS resistive switches are different according to their beam shapes and metal contact areas.
\nFigure 1 shows 3D view of the metal-contact RF microswitch implemented on silicon substrate of area 272 × 118 μm2 and thickness 48 μm. The cantilever beam is made of gold and silicon nitrate of thickness 0.2 μm. A 0.5-μm-thick dimple is used to make metal to metal contact and to separate the cantilever beam from actuation pad in down-position.
3D layout of metal contact microswitch (in coventorware software).
The equivalent R-L-C circuit of proposed switch in on-position and off-position are shown in Figure 2. The circuit model of metal-contact microswitch is used to extract the
Equivalent R-L-C circuit of metal-contact MEMS switch in (a) on-position (b) off-position.
After solving equivalent circuit, at a given solution frequency, the impedance in ON position is equal to Zeq = Rsw + iwLs = 3.98 + 2.52i (in ohm) and in OFF position, the capacitance value calculated is Cc = 2.74 femto-Farad. These values are useful to define the insertion loss and isolation. Except the characteristics impedance, other circuit values are permitted to vary the isolation and insertion loss results calculations [48]. Here the actual equivalent circuit of proposed structure was generated by using HSPICE model file. The HSPICE file from HFSS was exported in Advanced Design System (ADS) software to validate the results through equivalent circuit and layout approach. The generated lumped LCR model of switch in ADS was simulated again by setting 50 ohm impedance at input and output terminal for the verification of post-electromagnetic parameters and further comparison shows similar results as generated by HFSS.
\nThe mechanical movement depends on spring constant of designed beam structure and lower spring constant is required for better switch operation [49]. At pull-in voltage (Vp = 9.1 V), an electrostatic force is generated between actuation and beam electrode. As a result, beam metal-part makes a contact with transmission line and RF signal passes through this path. The plots of Vp and squeezed-film damping effect in the form of displacement time (ts) are shown in Figure 3. The simulated S-parameters from 0.1 to 10 GHz are shown in Figure 4. In ON-position, the insertion and return losses (RL) are 0.15 to 0.51 dB and 34.94 to 13.10 dB, respectively. In OFF-position, the isolation is 75.96 to 35.83 dB.
(a) Normalized gap height/displacement (in z-direction) versus applied voltage (pull-in voltage characteristics) and (b) transient response of switch.
(a) Simulated S-parameter (insertion loss and RL) of switch in on-state and (b) simulated S-parameter (isolation and RL) of switch in off-state (S11 and S21).
A PS method [33] searches set-points around the existing point, observing for unique where the experimental value of the cost function is lesser than the value at the existing point. The insertion, isolation and RL of presented microswitch in on-off condition are optimized using PS method. These parameters were improved by varying the physical dimensions (width and length) of transmission lines as shown in Figures 5 and 6. The substrate thickness and cantilever dimensions are already optimized during the designing process of the RF switch. Here, the problem statement and objective function are by varying structure dimensions of RF microswitch of transmission line to find the maximum transmission from Wave Port 1 to Wave Port 2 (S21 = >1), define the cost function to be –mag (S(WavePort2, WavePort1)) at some specific frequency. The physical dimensions for optimization purpose must be limited so as to avoid the overlarge size as compared with the substrate area, so the restricted limits are set as (20 μm ≤ (L = length) ≤ 45 μm) and (5 μm ≤ (W = width) ≤25 μm), respectively. During optimization analysis, the target is set to identify maximum condition to achieve aforementioned cost function in both on and off position.
Optimized results at on-position of switch: (a) insertion and (b) return loss.
Optimized results at off-position of switch: (a) isolation and (b) return loss.
Table 4 summarizes the optimized S-parameters of metal-contact switch at 5 GHz. The PS optimization takes six and eight iterations in on and off-positions to optimize the S-parameters with simulation time of 39 and 38 min, respectively. The minimum cost function is achieved in fourth iteration in on position and sixth iteration in off position. The optimized value of length and width in on-position is 45 and 25 μm and in off-position of switch is 20 and 5 μm. It has been observed from optimized results that there is major improvement in isolation, reasonable return loss and minor improvement in insertion loss. This is because that PS algorithm follows the designing equations for antenna analysis not includes the transmission line effect and consequently, they are only useful for comparison with simulated data under restricted conditions.
S-parameters | Without optimization (dB) | With PS optimization (dB) |
---|---|---|
Insertion loss | −0.32 | −0.26 |
RL in down-state | −17.89 | −19.85 |
Isolation | −41.95 | −60.90 |
S-Parameters of MEMS switch at 5 GHz.
The design approach of RF switches (as discussed in Section 3) with their optimization approach (as discussed in this section) may be shown in the form of flow sequence in Figure 7.
Flow diagram of designing and optimization approach of RF switches.
Figure 8 shows the geometry of our proposed defected ground slot antenna which consists of feed-line, patch element and two RF micrometal-contact switches. The antenna was designed on Rogers 4350 substrate of thickness 0.762 mm, relative permittivity
10 | 1.8 | 9 | 22 | 11 | 4 | |
4 | 4 | 4 | 2 | 2 | 2 |
Antenna dimensions (in mm).
Dual band slot antenna with two metal-contact MEMS switches.
The proposed RA fabrication and testing set-up broadly contain five different sections which include defected ground planar antenna, RF switches with biasing circuit and voltage regulated power supply to on/off the desired RF switches, vector network analyzer (VNA) and anechoic chamber. The resistive RF microswitch selected for the antenna is same as designed and optimized in this article. For proof of concept, its equivalent RF switches (CSWA2-63DR+) having almost similar isolation and matching of 50 ohm was considered. Although small variation in results are noticed in ON-position of switches at antenna, as compared to simulated results, this is just because of different insertion loss value of tested switch. It consumes very low power (in μW) and typical supply current range is 18 μA. Further, the RF switch used here has operating bandwidth lying from 0.5 to 6.5 GHz. A separate laminate sheet of Roger RO4350 with same substrate thickness (0.762 mm) as that of defected ground antenna was used for integration of RF switches.
\nThe design approach of reconfigurable antenna (as discussed in this section) may be shown in the form of flow sequence in Figure 9.
Flow diagram of designing approach of reconfigurable antenna.
Figure 10 shows the laminate sheet that consists of 10 RF switches and only two switches (
Prototype of RF switches PCB and regulated power supply circuit.
The electronics switches were integrated on power supply PCB which activates the desired RF switches through 40 pin Atmel microcontroller. The measurements of RA electromagnetic characteristics were done with the help of Agilent Technologies E5071C in an anechoic chamber. The two RF switches provide four possible switching states, that is, on-on, on-off, off-on and off-off. The testing result shows that in on-on state, antenna demonstrates best resonance performance as shown in Figure 11 and Table 6.
Switch-state | Resonating freq. (GHz) | RL (S11) in dB | Bandwidth (MHz) | |||
---|---|---|---|---|---|---|
Simulated | Measured | Simulated | Measured | Simulated | Measured | |
3.62 | 3.58 | −23.29 | −22.50 | 300 | 294 | |
3.08 | 3.06 | −32.54 | −27.20 | 121 | 118 | |
6.34 | 6.40 | −30.25 | −26.32 | 392 | 384 | |
2.89 | 2.85 | −13.58 | −12.92 | 151 | 148 | |
6.13 | 6.08 | −20.75 | −21.10 | 392 | 386 | |
2.87 | 2.86 | −11.98 | −12.55 | 181 | 178 | |
6.09 | 6.14 | −15.37 | −15.18 | 573 | 569 | |
3.17 | 3.20 | −12.50 | −13.10 | 90 | 88 | |
6.49 | 6.50 | −18.12 | −16.78 | 271 | 266 |
Comparison of S-parameter results of antenna with and without RF switches.
Comparison of simulated and measured RL of proposed RA.
Measured normalized co-polar, cross-polar and total gain radiation patterns in E-plane and H-plane for the reconfigurable antenna at different switching configuration (a) XZ-plane (phi = 0), (b) XY-plane (theta = 0), (c) YZ-plane(phi = 90), (d) gainPhi and gainTheta (theta = 90), (e) gain total (phi = 0, theta = 90) and (f) gain total (theta = 0, theta = 90).
In this chapter, initially a metal-contact microswitch for application of reconfigurable defected ground antenna has been presented, simulated and optimized. Further, the circuit model of RF switch has also been used to extract the capacitance, resistance and inductance parameters by using ADS to validate insertion loss and isolation results. For optimization of S-parameters, pattern search (PS) optimization algorithm has been used after reviewing many of the commonly used optimization techniques. After PS optimization, the RF switch shows significant improvements in insertion loss and isolation at 0.1–10 GHz. Further, the proposed metal-contact microswitch when introduced on defected ground slot antenna and fabricated antenna showed dual-band characteristics as well as reduction in size. From wireless industrial application point of view, the proposed compact reconfigurable antenna with RF switches aiming towards the future wireless miniature devices is suitable for IEEE S- and C-bands. In other words, the proposed reconfigurable antenna finds suitable applications in vehicular and wireless technologies.
This work was supported by National Program on Micro and Smart Systems (NPMASS) and also MANCEF, New Mexico, USA, along with coventor organization for providing coventorware, comsol and other useful softwares.
Customary medical understanding is undergoing augmented consideration globally in health sector. The importance of traditional medicine in catering the health needs cannot be undermined. The herbal medicine sector commercially is already booming with the annual turnover crossing billions of dollars. With the passage of time newer knowledge is being incorporated substantially thereby highlighting the significance of documentation aspects pertaining to these medicinal plants and practices associated with herbal medicine.
Documentation based upon ethnomedicinal survey along with interaction with local healers practicing traditional system of medicine can be said to be the basis for establishing a systematic protocol for validating traditional medical knowledge.
Assam was selected as the targeted study area due to the rich diversity in flora, fauna and above all due to the presence of diverse ethnic groups with a wide array of traditional practices. Several geographically distinct zones, encompassing seven administrative districts spread across Assam were considered for the study (Figure 1).
Map of Assam showing different districts where ethnomedicinal survey was conducted.
The selected areas in which the ethnomedicinal survey was done are as follows:
Nagakhelia village and Jokai area, Dibrugarh
Naojan and Borghoria area, Golaghat
Laipuli, Tinsukia
Majarbari village and Sissiborgaon, Dhemaji
Kathkatia village, Karbi Anglong
Dhupdhora, Goalpara
Dotma, Kokrajhar
Dibrugarh is known as the Tea City of North-East.To the north and east lays Dhemaji and Tinsukia district respectively. South-east and south-west parts of Dibrugarh are bounded by Tirap and Sivsagar district [1, 2, 3, 4].
Two places in Dibrugarh district were selected for ethnomedicinal survey viz. Nagakhelia and Jokai. Nagakhelia is a small village, consisting of around hundred households under Barbaruah block of Dibrugarh district lays about 6 km from Dibrugarh University [5]. The village is located on the banks of river Brahmaputra and the area boasts of thick vegetation which serves as a prime source of medicinal plant materials for the local healers of the area practicing traditional medicine.
Jokai comes under Barbaruah block in Dibrugarh district. It is located about 10 km south from Dibrugarh University. It is also home to the over twelve hectare Jokai reserve forest within which Jokai Botanical Garden cum Germplasm Centre is located. The reserve forest is endowed with different flora species of medicinal, oil bearing and aromatic plants. It also has diverse fauna species like flying squirrel, black panther and leopard including various species of butterflies and fishes. The villages surrounding the forest areas in Jokai has a rich heritage of prescribing traditional medicine, mostly from plants for many types of ailments like jaundice, diabetes, malaria, fever, skin infection etc.
Golaghat is an important district of upper Assam having its own historical and cultural heritage. Golaghat is bordered by the Brahmaputra River in north, towards south lays Nagaland, whereas in the east it is bounded by Jorhat district and the western side lays Karbi Anglong and Nagaon district [4]. The major rivers of the district are Brahmaputra, Dhansiri, Kakodonga, Doyand, Gelabil and Diplolu [6]. The vast geography of Golaghat district also includes tropical evergreen and semi evergreen forest; tropical grassland in Kaziranga National Park and swampy vegetation. The topography of Golaghat is dominated by a diverse array of flora and fauna [7, 8].
Borghoria and Naojan were the areas selected for ethnomedicinal survey in Golaghat district. Borghoria village and Naojan are located about 30 km and 60 km from Golaghat town and about 2.5 km and nearly 70 km from Numaligarh Refinary township, respectively. Naojan, due to its close proximity to Barpathar, an archeological site where the remains of an 8th century temple made of square bricks and a stone inscription of Brahmi characters belonging to the 5th century were excavated along with the hot water springs and Garampani Wildlife Sanctuary of Garampani, has a very rich abundance of diverse flora and fauna. Borghoria situated in the vicinity of Dhansiri river has an exposure to vast and varied natural resources. Traditional healers around the area are mainly engaged in agricultural activities and prescriptions of traditional medicine by these healers are done on philanthropic basis [3].
Tinsukia is situated in the northernmost portion of Assam [2]. The district is surrounded on three sides by Arunachal Pradesh. The south part is ecompassed by Dibrugarh. As the district falls in the far east of North-East region of Assam (India), it is a part of global bio-diversity hot spot and has great biodiversity significance [9, 10]. The high biological diversity found in the district is often related to its forest cover, which is categorized into tropical wet evergreen forests. The important sanctuary located in the district is Dibru-Chaikhowa Sanctuary. It has an area of 640 sq. km and is famous for rare, endangered animals and birds such as white-winged wood duck, elephant, tiger, sambar, buffalo, aquatic avifauna and wild white horse. The other protected areas and important forests are Dum Duma-Dangori-Kumsong Reserve Forests, Tirap-Burihidihing, Sadiya plains, Upper Dihing (East) and Upper Dihing (West).
Ethnomedicinal survey in Tinsukia districted was conducted in Laipuli area. Laipuli is located at a distance of around 6 km from Tinsukia town [3].
Situated in the northern bank of the mighty river Brahmaputra, Dhemaji can be suitably described to be located in one of the remote area of north eastern region of India. In its northern and eastern end the state of Arunachal Pradesh lies. The western part is bounded by Lakhimpur district followed by river Brahmaputra in the South. Dhemaji has a total geographical area of 3237 sq. km [1, 2, 3, 4].
Two places selected for the ethnomedicinal survey in Dhemaji district were Majarbari and Sissiborgaon.
The district of Karbi Anglong is located in the central Assam region. The eastern part is surrounded by Golaghat district, in its west lies the state of Meghalaya and Morigaon district, the north is bounded by Nagaon and Golaghat district whereas North Cachar Hills and the state of Nagaland is located towards south. Karbi Anglong district is home to thick forest cover having numerous species of flora and fauna. It is to be noted that a new district, West Karbi Anglong was curved out from erstwhile Karbi Anglong district on 15th of August, 2015 [1, 3].
The district can be broadly divided into two physiographic units’ viz. hills and plains. About 85 percent of the district is covered by hills [4]. Environmental and topology studies of Karbi Anglong specify a great degree of diversity among the existing plant and animal species. The forest areas serves as the natural gene bank of important types and sub types pertaining to various species.
Kathkatia village located in Silonijan of Karbi Anglong district was selected for the ethnomedicinal survey [11].
Goalpara is sited towards the southern bank of Brahmaputra River. The district is surrounded by the state of Meghalaya in the South, towards east lays Kamrup district, the western end is bounded by Dhubri district and, the northern part is covered by the mighty Brahmaputra. In 1983, Goalpara Civil sub-division was separated from original Goalpara district to form the present Goalpara district [1, 2].
Dhupdhara selected for the ethnomedicinal survey, is a village in Rongjuli circle in Goalpara district of Assam. It is located about 58 km east of district headquarter Goalpara and 13 km from Rangjuli [3, 4].
Kokrajhar district is the entry point to the NER of India. It is boardered by Bhutan in the north, followed by the district of Dhubri in its south, whereas Bongaigaon and West Bengal is situated in the east and west directions.
On the 1st of July, 1983 the Kokrajhar Sub-division was upgraded into Kokrajhar district with headquarter at Kokrajhar town [3]. The district is situated in a humid sub-tropical climate, which is the characteristic of the lower Brahmaputra Valley of Assam. The district also has one of the largest concentrations of forest in the state. About 55% of the total geographical area of the district is under reserved forest. The Bhutan hills are the source of a number of rivers that flow through the district and act as tributaries of the mighty Brahmaputra that flows from east to west far from the southern boundary of Kokrajhar district [4].
Dotma village in Kokrajhar district of Assam was selected for the survey for ethnomedicinal documentation. It is located about 17 km towards North from District head quarters Kokrajhar, 188 km from State capital Dispur towards East. Dotma is bounded by Kokrajhar town towards East, Kachugaon towards west, Rupshi towards west, Chapor-Salkocha towards west. Kokrajhar, Bilasipara, Bongaigaon, Gauripur are the nearby towns to Dotma [12].
Plants surveyed in Dibrugarh region were documented on the basis of interview and questionnaire with the traditional healers with emphasis on the part of the plants and their applications in treating different diseases and disorders (Table 1).
District | Plant name | Part used | Use/applications | |
---|---|---|---|---|
Botanical name | Local name | |||
Dibrugarh | Sotmul | Root | Kidney stone | |
Kordoi | Leaves, Fruit | Jaundice | ||
Horu Kasidoria | Leaves | Wound healing | ||
Sonaru | Bark | Fever, Deworming | ||
Letaguti | Seed | Wound healing | ||
Bilokhoni | Leaves | Skin infection, Snake bite, Joint pain | ||
Barmanimuni | Whole plant | Wound healing, Well being | ||
Dhapat tita | Leaves, Root | Malaria, Diabetes, Jaundice, Skin infection | ||
Jomlakhuti | Rhizome | Jaundice | ||
Meetha Pat | Leaves | Body pain, dysentery, piles, fever | ||
Tiyanh | Leaves, Fruit | Bleeding nose, Diabetes | ||
Ow tenga | Fruit | Constipation, Stomach trouble | ||
Laijabori | Aerial part | Fever, stomach ache | ||
Tongloti | Root | Tooth ache | ||
Hiju | Latex | Asthma | ||
Madhoi maloti | Root | Asthma | ||
Mosonduri | Leaves | Constipation | ||
Durum bon | Aerial parts | Cough, Fever | ||
Bhat kerela | Root | Urinary problems | ||
Narashinha | Leaves, Tender aerial parts | Stomachic | ||
Gorob choi | Aerial parts | Tooth ache, Skin infection | ||
Bhedai lota | Aerial parts | Stomach problem, Constipation, Joint pain | ||
Kopalphoota | Aerial parts | Jaundice | ||
Modhuhuleng | Aerial parts | Stomach trouble, Dysentery | ||
Tezi gulap | Flower | Eye infection | ||
Monisal | Fruit | Tonsillitis | ||
Mesaki | Leaves | Infection, Diarrhea, Dysentery | ||
Omora | Fruit | Acidity, Stomach trouble | ||
Paroli | Leaves | Skin infection | ||
Tubuki lota | Leaves | Wound healing | ||
Kola jamuk | Seed | Diabetes, Stomach trouble | ||
Hunbarial | Leaves | Body pain, Joint pain | ||
Pochotia | Leaves | Fever, Cough |
Some of the medicinal plants used in Dibrugarh district and their allied applications.
Plants in the surveyed areas of Golaghat district were subjected to documentation on the basis of interview and questionnaire with the traditional healers with emphasis on the part of the plants and their applications in treating different diseases and disorders. Some of the plants are listed in Table 2.
District | Plant name | Part used | Use/applications | |
---|---|---|---|---|
Botanical name | Local name | |||
Golaghat | Kor Phool | Rhizome | Tooth ache | |
Bel | Leaves, Fruit | Kidney problem, Dysentery | ||
Chuli dhekia | Aerial part | Wounds, Infection, Tooth ache | ||
Kordoi | Fruit | Jaundice, Diarrhea, Dysentery | ||
Gandhalibon | Leaves | Cuts and wound | ||
Tora | Rhizome | Stomach trouble, Joint pain | ||
Mati Kanduri | Aerial part | Constipation | ||
Leteku | Fruit | Stomach problem | ||
Dolicha Bon | Leaves | Tooth ache, Gum swelling | ||
Dupor tenga | Leaves | Leaves Kidney stone | ||
Bogi tenga | Leaves | Menstrual discomfort | ||
Patidoi | Stem | Support in fracture | ||
Jomlakhuti | Rhizome | Jaundice, Diabetes | ||
Leteki | Aerial parts | Diabetes | ||
Patihunda | Leaves | Asthma, Cough | ||
Aparijita | Root, Flower | Fever, Snake bite, Infection of skin | ||
Bonoria jaifal | Seed | Laxative | ||
Tubuki lota | Leaves | Diabetes | ||
Kehraj sesu | Leaves | Blood clotting | ||
Pakhila phool | Rhizome | Joint pain | ||
Horu manimuni | Whole plant | Fever, Stomach problem | ||
Durun Bon | Leaves | Snake bite, Sinusitis | ||
Dighloti | Leaves | Insect repellent | ||
Bon Amlokhi | Shoot | Stomach trouble, Urinary problem | ||
Madhu huleng | Aerial parts | Diarrhea | ||
Mesaki | Aerial parts | Tapeworm infection | ||
Hunbariol | Root | Helps in child birth for pregnant women | ||
Tikoni barua | Leaves, Root | Wound healing | ||
Lota madhuri | Shoot | Anti infective | ||
Bon Agora | Aerial parts | Insect repellent | ||
Tejmuri | Stem | Fractured bone |
Some of the medicinal plants used in Golaghat district and their allied applications.
Plants in Tinsukia district, surveyed areas were documented on the basis of interview and questionnaire with the traditional healers with emphasis on the part of the plants and their applications in treating different diseases and disorders (Table 3).
District | Plant name | Part used | Use/applications | |
---|---|---|---|---|
Botanical name | Local name | |||
Tinsukia | Gorokhia korai | Root | Urinary disorders | |
Latumoni | Root | Urinary disorders | ||
Bionihakuta | Leaves, Root | Wound, Sore throat, Cough and Cold | ||
Bosh | Rhizome | Acidity | ||
Hatikhutura | Root, Aerial parts | Diarrhea, Increases milk output in lactating mother | ||
Bishalya karani | Leaves | Wound healing | ||
Mati kanduri | Aerial parts | Dysentry, Stomach trouble | ||
Letaguti | Seed | Fever, Body pain | ||
Sewa | Root | Increases milk output in lactating mother | ||
Karabi | Seed, Bark, Latex | Anti-infective, Diabetes, Fever | ||
Hukuta | Tender Aerial parts | Relieves pain after child birth | ||
Bormanimuni | Whole plant | Health tonic, Memory enhancer | ||
Patihonda | Leaves | Diabetes | ||
Kolmou | Leaves | Diabetes | ||
Harjura lota | Stem, Tendrils | Wound, Fracture | ||
Robab tenga | Fruit | Jaundice, Deworming | ||
Nephafu | Leaves | Hypertension | ||
Leteki | Leaves | Diabetes, Blood purification | ||
Jomlakhuti | Rhizome, Leaves | Jaundice, snake bite | ||
Gochmahudi | Leaves | Menstrual discomfort | ||
Bhui tita | Leaves | Fever, Malaria | ||
Aam ada | Rhizome | Diarrhea, Dysentery | ||
Akashi lota | Stem | Jaundice, Wound healing | ||
Kuji thekera | Fruit | Diarrhea, Dysentery | ||
Rupahi thekera | Fruit | Gastric discomfort, Diarrhea | ||
Tengamora | Aerial parts | Diarrhea, Dysentery | ||
Mosondori | Leaves, Tender shoot | Flatulence, Diarrhea, Dysentery | ||
Sengmora | Rhizome, Aerial parts | Menstrual discomfort | ||
Gakhiroti bon | Whole plant | Increases milk output in lactating mother | ||
Kopou dhekia | Leaves | Fungal infection | ||
Phutuki | Leaves | Wound healing | ||
Hukloti | Aerial parts | Stomach problems | ||
Birina | Root | Rheumatic pain |
Some of the medicinal plants used in Tinsukia district and their allied applications.
Plants in Dhemaji district selected areas were documented on the basis of interview and questionnaire with the traditional healers with emphasis on the part of the plants and applications in treating different diseases and disorders (Table 4).
District | Plant name | Part used | Use/applications | |
---|---|---|---|---|
Botanical name | Local name | |||
Dhemaji | Ui-sipak | Leaves | Cuts and wound healing | |
Namnyin/ Gunduabon | Aerial parts | Aids blood clotting, Wound healing | ||
Patang oying | Aerial parts | Jaundice, Body ache | ||
Singgi | Leaves | Wound healing | ||
Sada Bahar | Leaves | Diabetes | ||
Akon | Leaves, Latex | Wound healing, Body ache | ||
Tezmuri | Leaves | Tooth ache, Fever | ||
Jarmanibon | Leaves, Root | Snake bite, Anti infective | ||
Gomset sori | Aerial parts, Tendrils | Tendrils Joining of fractured bone | ||
Keuri | Leaves | Snake bite, wounds | ||
Peki jigjig | Rhizome | Jaundice, UTI | ||
Rukji | Leaves | Increases milk output in lactating mother | ||
Bhuter chira | Aerial parts | Infection, Menstrual discomfort | ||
Bormang ori | Leaves | Appetizer, stomach problems | ||
Takpi | Fruit | Jaundice | ||
Rupohi tehekera | Fruit | Jaundice, Diarrhea | ||
Musondri | Leaves | Optimizes stomach function | ||
Mou | Leaves | Jaundice, Diabetes | ||
Takemare | Leaves | Stomach trouble | ||
Yuptap | Root | Deworming | ||
Doge kopak | Flower | Diarrhea, Dysentry | ||
Mezangkori | Bark | Asthma, Cough | ||
Loshkosi | Leaves | Jaundice | ||
Jangli pikran | Leaves, Roots | Purify blood, Stops white vaginal discharge | ||
Tengsi | Leaves | Hypertension, Diabetes, Stomach upset | ||
Rikom | Aerial parts | Anti infective |
Some of the medicinal plants used in Dhemaji district and their allied applications.
Documentation of plants in Karbi Anglong district, surveyed areas was then done on the basis of interview and questionnaire with the traditional healers with emphasis on the part of the plants and their applications in treating different diseases and disorders (Table 5).
District | Plant name | Part used | Use/applications | |
---|---|---|---|---|
Botanical name | Local name | |||
Karbi Anglong | Bapchuki | Leaves, Flower | Stomach ache, Acidity | |
Arnam hanserong | Leaves, Fruit | Snake bite | ||
Chuselok | Leaves | Fever, Asthma, Joint pain | ||
Mir-at | Leaves, Flower | Snake bite, Insect bite | ||
Themra/Khemra | Leaves, Bark | Snake bite | ||
Phrikan gnek | Leaves, Rhizome | Stomach ache, Improves digestion | ||
Raeaba | Aerial parts | Fever, Infection | ||
Hen salku | Leaves, Flower | Piles, Irregular bowel movement | ||
Chamua | Leaves, Tuber | Piles, Irregular bowel movement | ||
Pri | Aerial parts | Snake bite | ||
Bapduli | Leaves, Flower | Joint pain, Improves bowel movement | ||
Tui | Leaves | Diabetes, Jaundice | ||
Ai-upo | Leaves, Rhizome | Jaundice, Snake bite | ||
Or-oh | Aerial parts | Acidity, Heart burn | ||
Chusot | Aerial parts | Piles, Irregular bowel movement | ||
Bap kangsam | Fruit, Flower | Scorpion bite | ||
Thengsakso | Leaves | Acidity, Fever | ||
Hanboka | Leaves | Wound healing | ||
Nopak ban | Leaves, Flower | Intestinal worm, Stomach ache | ||
Rekang nemthu | Leaves | Acidity | ||
Thebongkang | Leaves, Fruit | Stomach ache, Deworming | ||
Titaful | Flower | Fever, Jaundice | ||
Bhekuri tita | Leaves, Fruit | Anti infective | ||
Siming | Leaves, Flower | Acidity, Diarrhea | ||
Mir kadomphui | Leaves, Flower | Anti infective, Wound healing, Improves digestion | ||
Vorke abap | Leaves, Flower | Fever, Ache, Malaria |
Some of the medicinal plants used in Karbi Anglong district and their allied applications.
Documentation of plants in the surveyed region of Goalpara district was initiated on the basis of interview and questionnaire with the traditional healers with emphasis on the part of the plants and their applications in treating different diseases and disorders (Table 6).
District | Plant name | Part used | Use/applications | |
---|---|---|---|---|
Botanical name | Local name | |||
Goalpara | Dadhubedang | Leaves | Stomach ache, Ringworm infestation | |
Muktaborcha | Leaves | Asthma, Bronchitis | ||
Batbelai | Leaves | Eye infection | ||
Vate gakha | Leaves | Memory tonic | ||
Aakon | Leaves, Bark | Snake bite, Asthma | ||
Matak tuka | Leaves | Wound, Sore | ||
Dudh bon | Shoot, Latex | Infection | ||
Domuru | Leaves | Jaundice | ||
Narasinghabelai | Leaves, Tender aerial parts | Fever, Stomach upset | ||
Podum | Rhizome | Menstrual discomfort | ||
Dhulungshi | Leaves | Cough, Fever | ||
Bhadalilewa | Leaves | Diarrhea, Dysentry | ||
Debdaru | Bark | Menstrual discomfort | ||
Tita Bhekri | Fruit | Malaria, Fever, Jaundice, Diabetes | ||
Amra | Fruit | Diabetes, Stomach upset | ||
Pasatia | Leaves | Body pain, Wound, Fever |
Some of the medicinal plants used in Goalpara district and their allied applications.
Plants in surveyed areas of Kokrajhar district were documented on the basis of interview and questionnaire with the traditional healers with emphasis on the part of the plants and their applications in treating different diseases and disorders (Table 7).
District | Plant name | Part used | Use/applications | |
---|---|---|---|---|
Botanical name | Local name | |||
Kokrajhar | Kumbra | Fruit, Leaves | Diabetes, Acidity | |
Dhuna | Leaves, | Bark Joint pain | ||
Bangrilewa | Leaves | Stomache ache, dysentery | ||
Daokhumwi | Young aerial part | Wound healing | ||
Lwkwna | Leaves | Jaundice, Wound healing | ||
Nilkantha | Leaves | Fever, antiseptic | ||
Buritokon | Rhizomes, Leaves | Jaundice, Snake bite | ||
Patw | Leaves, Root | Fever, Diarrhea | ||
Datura | Leaves, Fruits | Tooth ache, Heartburn, Asthma | ||
Amla | Fruit | Tonic, Stomachic | ||
Koma | Leaves, Root | Heartburn, Fever, Cuts and Wound | ||
Khangsinsa | Leaves | Sinusitis, Pain | ||
Sephali | Leaves, Flower | Antihelmintic | ||
Tulsi | Leaves | Cough relief, Asthma | ||
Bhedalilewa | Leaves | Diarrhea, Constipation | ||
Bongpang rakeb | Whole plant | Kidney stone, Diarrhea, Fever | ||
Agara | Root, Leaves | Fever, Joint pain |
Some of the medicinal plants used in Kokrajhar district and their allied applications.
The ethnomedicinal survey conducted in the different areas revealed the prominent use of the species belonging to the genus costus. The species were
It is a herb occurring in the moist and wet evergreen areas of the Indo-Malayan region and Sri Lanka along with Brazil, Bolivia, Colombia, Peru, Mexico etc. Within India it occurs from Central and Eastern Himalayas to Southern India [15, 16].
It is mainly distributed in the neo tropical regions. Within India its geographical distribution is in the sub-Himalayan tract from Kangra district of Himachal Pradesh eastwards to Arunachal Pradesh; and in the Western ghats in Maharastra, Goa, Karnataka, Kerala and Tamil Nadu.
This plant is mainly distributed in the neo tropical regions [18, 19]. In India it found in the sub-Himalayan tract from Himachal Pradesh to Arunachal Pradesh; and in the Western ghats in Goa, Kerala and Tamil Nadu.
The state of Assam, popularly known as the land of the red river and blue hills is home to a diverse array of flora and fauna. Assam falls in one of the great migration routes of mankind of different groups who over the centuries have come and settled down. Every community has its own traditional rituals, customs and herbal remedies which have been molded by the geographical location and the environmental factors where they reside. The abundant natural resources in encompassing location form the basis for the characteristic food habits and related medicinal practices of each community. By their experience, the knowledge of herbal remedies was transferred to generation after generation as folk medicine.
A study was conceived based on the aforesaid facts with intent to scientifically analyze different folkloric healing practices encompassing various medicinal plants. Subsequently an ethno medicinal survey was conducted across the state of Assam for compiling information with respect to traditional medicine. Thereafter, plants belonging to Costaceae family were selected for scientific validation studies owing to their predominant use among the traditional healers in the surveyed regions particularly in upper Assam for treating ailments like jaundice, diabetes etc.
Three plants belonging to the costus genus were identified
Therefore, it can be safely concluded that species belonging to this genus are traditionally used in the mitigation of various ailments particularly diabetes. Furthermore,
The authors thankfully acknowledges the traditional healers of Dotma, Kokrajhar district; Dhupdhora, Goalpara district; Laipuli, Tinsukia district; Kathkatia village of Silonijan of Karbi Anglong district; Naojan and Baragharia village of Golaghat district; Nagakhelia village and Jokai area of Dibrugarh district; Sissiborgaon, Barmukuli and Majarbari village of Dhemaji district of Assam who helped by sharing their valuable information regarding the methodology of usage of different plant species used in the treatment of ailments. The authors also acknowledge Mrs. Monika Kuli of Barmukuli village of Dhemaji district, Mrs. Sarala Rabha of Dhupdhora of Goalpara district, Mrs. Minu Borah and Mr. Dhruba Borah of Baragharia village and Mrs. Purnima Borah of Jyotinagar, Golaghat district, Mrs. Savitri Sonowal of Jokai and Mr. Anil Bhuyan and Mr. Ripul Bhuyan of Nagakhelia village of Dibrugarh district, Mrs. Kareng Rongpi of Silonijan of Karbi Anglong district, Dr. Pranjit Narzaree, Ms. P. Narzaree of Kokrajhar district for their immense help regarding the collection of information in the conducted ethnomedicinal survey. The conducted study was not funded by any organization whether government, semi government or private funding bodies whatsoever.
“The authors declare no conflict of interest.”
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The Gram-positive pathogen is armed with battery of virulence factors that facilitate to establish infections in the hosts. The organism is well known for its ability to acquire resistance to various antibiotic classes. The emergence and spread of methicillin-resistant S. aureus (MRSA) strains which are often multi-drug resistant in hospitals and subsequently in community resulted in significant mortality and morbidity. The epidemiology of MRSA has been evolving since its initial outbreak which necessitates a comprehensive medical approach to tackle this pathogen. Vancomycin has been the drug of choice for years but its utility was challenged by the emergence of resistance. In the last 10 years or so, newer anti-MRSA antibiotics were approved for clinical use. 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Particular attention is paid to the purification of mesophilic SRB since they can be in close interaction with other microorganisms (Clostridium, Bacteroides, Pseudomonas, etc.), which are their frequent satellites. 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This chapter presents a review of the history of biocontrol, its advantages and disadvantages; the different types of biological control agents (BCAs) including predators, parasites (parasitoids) and pathogens (fungi, bacteria, viruses and virus‐like particles, protozoa and nematodes); the effect of biocontrol on native biodiversity; a few case studies of the successful implementation of biocontrol methods and the challenges encountered with the implementation of biocontrol and future perspectives.",book:{id:"5527",slug:"natural-remedies-in-the-fight-against-parasites",title:"Natural Remedies in the Fight Against Parasites",fullTitle:"Natural Remedies in the Fight Against Parasites"},signatures:"Tebit Emmanuel Kwenti",authors:[{id:"191763",title:"Dr.",name:"Tebit Emmanuel",middleName:null,surname:"Kwenti",slug:"tebit-emmanuel-kwenti",fullName:"Tebit Emmanuel Kwenti"}]},{id:"70336",title:"Plastics Polymers Degradation by Fungi",slug:"plastics-polymers-degradation-by-fungi",totalDownloads:1459,totalCrossrefCites:3,totalDimensionsCites:8,abstract:"The studies on plastic degradation are very important for the development of biodegradable plastics, and for reduction of pollution, since plastic waste can remain in the environment for decades or centuries. We have showed the degradation of oxo-biodegradable plastic bags and green polyethylene by Pleurotus ostreatus. This fungus can also produce mushrooms using these plastics. The plastic degradation was possibly by three reasons: (a) presence of pro-oxidant ions or plant polymer, (b) low specificity of the lignocellulolytic enzymes, and (c) the presence of endomycotic nitrogen-fixing microorganisms. In this chapter, the plastic bags’ degradation by abiotic and microbial process using the exposure to sunlight and the use of a white-rot fungus will described. The physical, chemical, and biological alterations of plastic were analyzed after each process of degradation. 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He is an academic staff member of the Department of Reproduction and Artificial Insemination, Selçuk University, Turkey. He manages several studies on sperms and embryos and is an editorial board member for several international journals. His studies include sperm cryobiology, in vitro fertilization, and embryo production in animals.",institutionString:"Selçuk University, Faculty of Veterinary Medicine",institution:null},{id:"90846",title:"Prof.",name:"Yusuf",middleName:null,surname:"Bozkurt",slug:"yusuf-bozkurt",fullName:"Yusuf Bozkurt",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/90846/images/system/90846.jpg",biography:"Yusuf Bozkurt has a BSc, MSc, and Ph.D. from Ankara University, Turkey. He is currently a Professor of Biotechnology of Reproduction in the field of Aquaculture, İskenderun Technical University, Turkey. His research interests include reproductive biology and biotechnology with an emphasis on cryo-conservation. He is on the editorial board of several international peer-reviewed journals and has published many papers. Additionally, he has participated in many international and national congresses, seminars, and workshops with oral and poster presentations. He is an active member of many local and international organizations.",institutionString:"İskenderun Technical University",institution:{name:"İskenderun Technical University",country:{name:"Turkey"}}},{id:"61139",title:"Dr.",name:"Sergey",middleName:null,surname:"Tkachev",slug:"sergey-tkachev",fullName:"Sergey Tkachev",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/61139/images/system/61139.png",biography:"Dr. Sergey Tkachev is a senior research scientist at the Institute of Fundamental Medicine and Biology, Kazan Federal University, Russia, and at the Institute of Chemical Biology and Fundamental Medicine SB RAS, Novosibirsk, Russia. He received his Ph.D. in Molecular Biology with his thesis “Genetic variability of the tick-borne encephalitis virus in natural foci of Novosibirsk city and its suburbs.” His primary field is molecular virology with research emphasis on vector-borne viruses, especially tick-borne encephalitis virus, Kemerovo virus and Omsk hemorrhagic fever virus, rabies virus, molecular genetics, biology, and epidemiology of virus pathogens.",institutionString:"Russian Academy of Sciences",institution:{name:"Russian Academy of Sciences",country:{name:"Russia"}}},{id:"310962",title:"Dr.",name:"Amlan",middleName:"Kumar",surname:"Patra",slug:"amlan-patra",fullName:"Amlan Patra",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/310962/images/system/310962.jpg",biography:"Amlan K. Patra, FRSB, obtained a Ph.D. in Animal Nutrition from Indian Veterinary Research Institute, India, in 2002. He is currently an associate professor at West Bengal University of Animal and Fishery Sciences. He has more than twenty years of research and teaching experience. He held previous positions at the American Institute for Goat Research, The Ohio State University, Columbus, USA, and Free University of Berlin, Germany. His research focuses on animal nutrition, particularly ruminants and poultry nutrition, gastrointestinal electrophysiology, meta-analysis and modeling in nutrition, and livestock–environment interaction. He has authored around 175 articles in journals, book chapters, and proceedings. Dr. Patra serves on the editorial boards of several reputed journals.",institutionString:null,institution:{name:"West Bengal University of Animal and Fishery Sciences",country:{name:"India"}}},{id:"53998",title:"Prof.",name:"László",middleName:null,surname:"Babinszky",slug:"laszlo-babinszky",fullName:"László Babinszky",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/53998/images/system/53998.png",biography:"László Babinszky is Professor Emeritus, Department of Animal Nutrition Physiology, University of Debrecen, Hungary. He has also worked in the Department of Animal Nutrition, University of Wageningen, Netherlands; the Institute for Livestock Feeding and Nutrition (IVVO), Lelystad, Netherlands; the Agricultural University of Vienna (BOKU); the Institute for Animal Breeding and Nutrition, Austria; and the Oscar Kellner Research Institute for Animal Nutrition, Rostock, Germany. In 1992, Dr. Babinszky obtained a Ph.D. in Animal Nutrition from the University of Wageningen. His main research areas are swine and poultry nutrition. He has authored more than 300 publications (papers, book chapters) and edited four books and fourteen international conference proceedings.",institutionString:"University of Debrecen",institution:{name:"University of Debrecen",country:{name:"Hungary"}}},{id:"201830",title:"Dr.",name:"Fernando",middleName:"Sanchez",surname:"Davila",slug:"fernando-davila",fullName:"Fernando Davila",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/201830/images/5017_n.jpg",biography:"I am a professor at UANL since 1988. My research lines are the development of reproductive techniques in small ruminants. We also conducted research on sexual and social behavior in males.\nI am Mexican and study my professional career as an engineer in agriculture and animal science at UANL. Then take a masters degree in science in Germany (Animal breeding). Take a doctorate in animal science at the UANL.",institutionString:null,institution:{name:"Universidad Autónoma de Nuevo León",country:{name:"Mexico"}}},{id:"309250",title:"Dr.",name:"Miguel",middleName:null,surname:"Quaresma",slug:"miguel-quaresma",fullName:"Miguel Quaresma",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/309250/images/9059_n.jpg",biography:"Miguel Nuno Pinheiro Quaresma was born on May 26, 1974 in Dili, Timor Island. He is married with two children: a boy and a girl, and he is a resident in Vila Real, Portugal. He graduated in Veterinary Medicine in August 1998 and obtained his Ph.D. degree in Veterinary Sciences -Clinical Area in February 2015, both from the University of Trás-os-Montes e Alto Douro. He is currently enrolled in the Alternative Residency of the European College of Animal Reproduction. He works as a Senior Clinician at the Veterinary Teaching Hospital of UTAD (HVUTAD) with a role in clinical activity in the area of livestock and equine species as well as to support teaching and research in related areas. He teaches as an Invited Professor in Reproduction Medicine I and II of the Master\\'s in Veterinary Medicine degree at UTAD. Currently, he holds the position of Chairman of the Portuguese Buiatrics Association. He is a member of the Consultive Group on Production Animals of the OMV. He has 19 publications in indexed international journals (ISIS), as well as over 60 publications and oral presentations in both Portuguese and international journals and congresses.",institutionString:"University of Trás-os-Montes and Alto Douro",institution:{name:"University of Trás-os-Montes and Alto Douro",country:{name:"Portugal"}}},{id:"38652",title:"Prof.",name:"Rita",middleName:null,surname:"Payan-Carreira",slug:"rita-payan-carreira",fullName:"Rita Payan-Carreira",position:null,profilePictureURL:"https://s3.us-east-1.amazonaws.com/intech-files/0030O00002bRiFPQA0/Profile_Picture_1614601496313",biography:"Rita Payan Carreira earned her Veterinary Degree from the Faculty of Veterinary Medicine in Lisbon, Portugal, in 1985. She obtained her Ph.D. in Veterinary Sciences from the University of Trás-os-Montes e Alto Douro, Portugal. After almost 32 years of teaching at the University of Trás-os-Montes and Alto Douro, she recently moved to the University of Évora, Department of Veterinary Medicine, where she teaches in the field of Animal Reproduction and Clinics. Her primary research areas include the molecular markers of the endometrial cycle and the embryo–maternal interaction, including oxidative stress and the reproductive physiology and disorders of sexual development, besides the molecular determinants of male and female fertility. She often supervises students preparing their master's or doctoral theses. She is also a frequent referee for various journals.",institutionString:null,institution:{name:"University of Évora",country:{name:"Portugal"}}},{id:"283019",title:"Dr.",name:"Oudessa",middleName:null,surname:"Kerro Dego",slug:"oudessa-kerro-dego",fullName:"Oudessa Kerro Dego",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/283019/images/system/283019.png",biography:"Dr. Kerro Dego is a veterinary microbiologist with training in veterinary medicine, microbiology, and anatomic pathology. Dr. Kerro Dego is an assistant professor of dairy health in the department of animal science, the University of Tennessee, Institute of Agriculture, Knoxville, Tennessee. He received his D.V.M. (1997), M.S. (2002), and Ph.D. (2008) degrees in Veterinary Medicine, Animal Pathology and Veterinary Microbiology from College of Veterinary Medicine, Addis Ababa University, Ethiopia; College of Veterinary Medicine, Utrecht University, the Netherlands and Western College of Veterinary Medicine, University of Saskatchewan, Canada respectively. He did his Postdoctoral training in microbial pathogenesis (2009 - 2015) in the Department of Animal Science, the University of Tennessee, Institute of Agriculture, Knoxville, Tennessee. Dr. Kerro Dego’s research focuses on the prevention and control of infectious diseases of farm animals, particularly mastitis, improving dairy food safety, and mitigation of antimicrobial resistance. Dr. Kerro Dego has extensive experience in studying the pathogenesis of bacterial infections, identification of virulence factors, and vaccine development and efficacy testing against major bacterial mastitis pathogens. Dr. Kerro Dego conducted numerous controlled experimental and field vaccine efficacy studies, vaccination, and evaluation of immunological responses in several species of animals, including rodents (mice) and large animals (bovine and ovine).",institutionString:"University of Tennessee at Knoxville",institution:{name:"University of Tennessee at Knoxville",country:{name:"United States of America"}}},{id:"251314",title:"Dr.",name:"Juan Carlos",middleName:null,surname:"Gardón Poggi",slug:"juan-carlos-gardon-poggi",fullName:"Juan Carlos Gardón Poggi",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/251314/images/system/251314.jpeg",biography:"Juan Carlos Gardón Poggi received University degree from the Faculty of Agrarian Science in Argentina, in 1983. Also he received Masters Degree and PhD from Córdoba University, Spain. He is currently a Professor at the Catholic University of Valencia San Vicente Mártir, at the Department of Medicine and Animal Surgery. He teaches diverse courses in the field of Animal Reproduction and he is the Director of the Veterinary Farm. He also participates in academic postgraduate activities at the Veterinary Faculty of Murcia University, Spain. His research areas include animal physiology, physiology and biotechnology of reproduction either in males or females, the study of gametes under in vitro conditions and the use of ultrasound as a complement to physiological studies and development of applied biotechnologies. Routinely, he supervises students preparing their doctoral, master thesis or final degree projects.",institutionString:null,institution:{name:"Valencia Catholic University Saint Vincent Martyr",country:{name:"Spain"}}},{id:"309529",title:"Dr.",name:"Albert",middleName:null,surname:"Rizvanov",slug:"albert-rizvanov",fullName:"Albert Rizvanov",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/309529/images/9189_n.jpg",biography:'Albert A. Rizvanov is a Professor and Director of the Center for Precision and Regenerative Medicine at the Institute of Fundamental Medicine and Biology, Kazan Federal University (KFU), Russia. He is the Head of the Center of Excellence “Regenerative Medicine” and Vice-Director of Strategic Academic Unit \\"Translational 7P Medicine\\". Albert completed his Ph.D. at the University of Nevada, Reno, USA and Dr.Sci. at KFU. He is a corresponding member of the Tatarstan Academy of Sciences, Russian Federation. Albert is an author of more than 300 peer-reviewed journal articles and 22 patents. He has supervised 11 Ph.D. and 2 Dr.Sci. dissertations. Albert is the Head of the Dissertation Committee on Biochemistry, Microbiology, and Genetics at KFU.\nORCID https://orcid.org/0000-0002-9427-5739\nWebsite https://kpfu.ru/Albert.Rizvanov?p_lang=2',institutionString:"Kazan Federal University",institution:{name:"Kazan Federal University",country:{name:"Russia"}}},{id:"210551",title:"Dr.",name:"Arbab",middleName:null,surname:"Sikandar",slug:"arbab-sikandar",fullName:"Arbab Sikandar",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/210551/images/system/210551.jpg",biography:"Dr. Arbab Sikandar, PhD, M. Phil, DVM was born on April 05, 1981. He is currently working at the College of Veterinary & Animal Sciences as an Assistant Professor. He previously worked as a lecturer at the same University. \nHe is a Member/Secretory of Ethics committee (No. CVAS-9377 dated 18-04-18), Member of the QEC committee CVAS, Jhang (Regr/Gen/69/873, dated 26-10-2017), Member, Board of studies of Department of Basic Sciences (No. CVAS. 2851 Dated. 12-04-13, and No. CVAS, 9024 dated 20/11/17), Member of Academic Committee, CVAS, Jhang (No. CVAS/2004, Dated, 25-08-12), Member of the technical committee (No. CVAS/ 4085, dated 20,03, 2010 till 2016).\n\nDr. Arbab Sikandar contributed in five days hands-on-training on Histopathology at the Department of Pathology, UVAS from 12-16 June 2017. He received a Certificate of appreciation for contributions for Popularization of Science and Technology in the Society on 17-11-15. He was the resource person in the lecture series- ‘scientific writing’ at the Department of Anatomy and Histology, UVAS, Lahore on 29th October 2015. He won a full fellowship as a principal candidate for the year 2015 in the field of Agriculture, EICA, Egypt with ref. to the Notification No. 12(11) ACS/Egypt/2014 from 10 July 2015 to 25th September 2015.; he received a grant of Rs. 55000/- as research incentives from Director, Advanced Studies and Research, UVAS, Lahore upon publications of research papers in IF Journals (DR/215, dated 19-5-2014.. He obtained his PhD by winning a HEC Pakistan indigenous Scholarship, ‘Ph.D. fellowship for 5000 scholars – Phase II’ (2av1-147), 17-6/HEC/HRD/IS-II/12, November 15, 2012. \n\nDr. Sikandar is a member of numerous societies: Registered Veterinary Medical Practitioner (life member) and Registered Veterinary Medical Faculty of Pakistan Veterinary Medical Council. The Registration code of PVMC is RVMP/4298 and RVMF/ 0102.; Life member of the University of Veterinary and Animal Sciences, Lahore, Alumni Association with S# 664, dated: 6-4-12. ; Member 'Vets Care Organization Pakistan” with Reference No. VCO-605-149, dated 05-04-06. :Member 'Vet Crescent” (Society of Animal Health and Production), UVAS, Lahore.",institutionString:"University of Veterinary & Animal Science",institution:{name:"University of Veterinary and Animal Sciences",country:{name:"Pakistan"}}},{id:"311663",title:"Dr.",name:"Prasanna",middleName:null,surname:"Pal",slug:"prasanna-pal",fullName:"Prasanna Pal",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/311663/images/13261_n.jpg",biography:null,institutionString:null,institution:{name:"National Dairy Research Institute",country:{name:"India"}}},{id:"202192",title:"Dr.",name:"Catrin",middleName:null,surname:"Rutland",slug:"catrin-rutland",fullName:"Catrin Rutland",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/202192/images/system/202192.png",biography:"Catrin Rutland is an Associate Professor of Anatomy and Developmental Genetics at the University of Nottingham, UK. She obtained a BSc from the University of Derby, England, a master’s degree from Technische Universität München, Germany, and a Ph.D. from the University of Nottingham. She undertook a post-doctoral research fellowship in the School of Medicine before accepting tenure in Veterinary Medicine and Science. Dr. Rutland also obtained an MMedSci (Medical Education) and a Postgraduate Certificate in Higher Education (PGCHE). She is the author of more than sixty peer-reviewed journal articles, twelve books/book chapters, and more than 100 research abstracts in cardiovascular biology and oncology. She is a board member of the European Association of Veterinary Anatomists, Fellow of the Anatomical Society, and Senior Fellow of the Higher Education Academy. Dr. Rutland has also written popular science books for the public. https://orcid.org/0000-0002-2009-4898. www.nottingham.ac.uk/vet/people/catrin.rutland",institutionString:null,institution:{name:"University of Nottingham",country:{name:"United Kingdom"}}},{id:"283315",title:"Prof.",name:"Samir",middleName:null,surname:"El-Gendy",slug:"samir-el-gendy",fullName:"Samir El-Gendy",position:null,profilePictureURL:"https://s3.us-east-1.amazonaws.com/intech-files/0030O00002bRduYQAS/Profile_Picture_1606215849748",biography:"Samir El-Gendy is a Professor of anatomy and embryology at the faculty of veterinary medicine, Alexandria University, Egypt. Samir obtained his PhD in veterinary science in 2007 from the faculty of veterinary medicine, Alexandria University and has been a professor since 2017. Samir is an author on 24 articles at Scopus and 12 articles within local journals and 2 books/book chapters. His research focuses on applied anatomy, imaging techniques and computed tomography. Samir worked as a member of different local projects on E-learning and he is a board member of the African Association of Veterinary Anatomists and of anatomy societies and as an associated author at local and international journals. Orcid: https://orcid.org/0000-0002-6180-389X",institutionString:null,institution:{name:"Alexandria University",country:{name:"Egypt"}}},{id:"246149",title:"Dr.",name:"Valentina",middleName:null,surname:"Kubale",slug:"valentina-kubale",fullName:"Valentina Kubale",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/246149/images/system/246149.jpg",biography:"Valentina Kubale is Associate Professor of Veterinary Medicine at the Veterinary Faculty, University of Ljubljana, Slovenia. Since graduating from the Veterinary faculty she obtained her PhD in 2007, performed collaboration with the Department of Pharmacology, University of Copenhagen, Denmark. She continued as a post-doctoral fellow at the University of Copenhagen with a Lundbeck foundation fellowship. She is the editor of three books and author/coauthor of 23 articles in peer-reviewed scientific journals, 16 book chapters, and 68 communications at scientific congresses. Since 2008 she has been the Editor Assistant for the Slovenian Veterinary Research journal. She is a member of Slovenian Biochemical Society, The Endocrine Society, European Association of Veterinary Anatomists and Society for Laboratory Animals, where she is board member.",institutionString:"University of Ljubljana",institution:{name:"University of Ljubljana",country:{name:"Slovenia"}}},{id:"258334",title:"Dr.",name:"Carlos Eduardo",middleName:null,surname:"Fonseca-Alves",slug:"carlos-eduardo-fonseca-alves",fullName:"Carlos Eduardo Fonseca-Alves",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/258334/images/system/258334.jpg",biography:"Dr. Fonseca-Alves earned his DVM from Federal University of Goias – UFG in 2008. He completed an internship in small animal internal medicine at UPIS university in 2011, earned his MSc in 2013 and PhD in 2015 both in Veterinary Medicine at Sao Paulo State University – UNESP. Dr. Fonseca-Alves currently serves as an Assistant Professor at Paulista University – UNIP teaching small animal internal medicine.",institutionString:null,institution:{name:"Universidade Paulista",country:{name:"Brazil"}}},{id:"245306",title:"Dr.",name:"María Luz",middleName:null,surname:"Garcia Pardo",slug:"maria-luz-garcia-pardo",fullName:"María Luz Garcia Pardo",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/245306/images/system/245306.png",biography:"María de la Luz García Pardo is an agricultural engineer from Universitat Politècnica de València, Spain. She has a Ph.D. in Animal Genetics. Currently, she is a lecturer at the Agrofood Technology Department of Miguel Hernández University, Spain. Her research is focused on genetics and reproduction in rabbits. 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