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1. Introduction
UNESCO [1] defined cultural heritage as “the entire corpus of material signs either artistic or symbolic, handed on by the past to each culture and therefore to the whole of mankind”. It thus represents “the legacy of physical artifacts and intangible attributes of a group or society that are inherited from past generations, maintained in the present and bestowed for the benefit of future generations” [1]. Ramos & Mafé-García [2] explain that cultural heritage includes “physical artifacts and intangible attributes of a place or society that are inherited from past generations”. Cultural Heritage is thus an expression of the ways of living developed by a community and passed on from generation to generation, including customs, practices, places, objects, artistic expressions and valuesThis includes both tangible and intangible elements, namely (a) tangible heritage assets, such as buildings, monuments, archaeological sites and locations of cultural significance, books, material objects including works of art (paintings, sculptures, drawings, prints, etc.), objects of the decorative arts (furniture, glassware, textiles, ceramics, etc.) and other artefacts, landscapes and natural heritage; and (b) intangible heritage assets, such as oral traditions, arts, rituals, folklore, language, and knowledge [2, 3, 4]. Intangible cultural heritage is described as a set of “practices, representations, expressions, as well as the knowledge and skills including instruments, objects, artefacts, cultural spaces” that are recognised as part of national heritage [5]. Cultural heritage is an evolving concept that experiences continuous reinterpretation and extension. Rather than representing concrete objects or artefacts, cultural heritage is increasingly regarded as a process, featuring a complex set of meaning, values, associations and related concepts [6].
The recently introduced term “Digital cultural heritage” describes cultural resources that were created in digital form (for example digital art or animation) or were digitised as a way to preserve them (including text, images, video and records) [7].
UNESCO [1] further notes that cultural heritage is not only a source for business and economy, but a fundamental condition for the maintenance and development of society and its economy. In terms of value, cultural heritage assets comprise both economic and cultural value. Cultural value is a complex concept that spans several dimensions: aesthetic, spiritual/religious, social, historical, symbolic and authenticity value [8]. Accordingly, “the experience of cultural heritage is varied according to the person’s realm of experience, the setting of the experience, and the intent of the experience from the point of view of the participator and the provider” [9]. A visitors’ overall engagement and satisfaction, and quality of experience are interlinked with the attributes of the heritage site [10, 11].
The most readily accessible experience of cultural heritage is in the realm of tourism [9]. For the tourism industry, culture and heritage represent an important asset for generating economic value. New types of tourism offerings have emerged, drawing on culture and heritage, and focusing on aspects such as a site’s built/historical heritage, popular culture, living culture, shared culture, cultural events, culinary culture etc. The European Travel Commission (ETC) describes international cultural tourism as “a movement of persons to specific cultural attractions, such as, heritage sites, artistic and cultural manifestations, arts and drama to cities outside their normal country of residence”. With tourists seeking more diversified, engaging and intellectual experiences [12], the tourism sector is shifting towards more experience-based products [13]. Culture emerges as a key motivation for travelling among tourists. Heritage tourism is growing in popularity, transforming cultural heritage into one of the principal attractions of a tourism destination and increasing the importance of cultural heritage preservation and valorisation.
McKercher et al. [14] stress the complexity of cultural tourism, as reflected in the variety of perspectives adopted for its definition: tourism-derived, motivational, experiential and operational. ICOMOS [15] describes cultural tourism as a form of tourism whose object includes the discovery of monuments and sites. Richards [16] defines heritage tourism as ‘the movement of persons to cultural attractions away from their normal place of residence, with the intention to gather new information and experiences to satisfy their cultural needs’.
There are different types of “cultural tourists”, in terms of the segmentation of these in heritage destinations [14, 17]. Cultural tourism is shaped as a combination of four elements: tourism, use of cultural heritage assets, consumption of experiences and products and the tourist [18].
Cultural tourists in growing numbers pursue an in-depth appreciation and understanding of different aspects of the culture and heritage of the places they visit. Cultural heritage tourists are in search of authentic experiences associated with a variety of cultural traits that are linked to distinct geographic locations. Dallen [19] highlights this diversity, stating that cultural heritage tourism “encompasses built patrimony, living lifestyles, ancient artifacts and modern art and culture”. The importance of culture and the importance of the cultural experience may also vary among visitors [20], the scale and depth of the information that the tourists have regarding this place likewise.
Recent years have seen the growing digitisation of cultural heritage, leveraged by innovative information technologies (imaging technologies, multimedia, virtual reality etc.). Advanced digitisation, and digital preservation and accessibility have been instrumental in transforming conservation and scientific research methods in the field of cultural heritage, as well as people’s experience of cultural heritage assets, relics, and monuments. Digitisation and immersion technologies are already in use in the context of cultural tourism in museums and on location. At the same time, a manifold of new applications and services can be generated from the adoption and adaptation of relevant technologies already applied in other sectors (e.g. 2D/3D digital scanning technologies applied in the construction industry).
On the consumer side, technology is driving change in lifestyles. New forms of tourism are emerging in the place of conventional tourism. Alsos et al. [13] note a transition of the tourism sector towards more experience-based products. Experiences are inherently personal. When a person buys an experience, they pay for a memorable event staged by the experience provider to engage them in an inherently personal way, on an emotional, physical, intellectual, or even spiritual level [21]. Stamboulis, and Skayannis [22] further explain that in this experience-based exchange the tourist enters into a multifaceted interaction with the actors and the setting of a narrative staged by the local community.
The United Nations World Tourism Organisation [23] concluded that “Culture and tourism have a symbiotic relationship”. This symbiotic relationship is increasingly facilitated by information and communication technologies. Overall, the economic valorisation of cultural heritage through tourism implies incorporating cultural heritage into the tourism supply [24], which means viewing cultural heritage as a component in the production of heritage-related tourism products and services. Given the high market interest of cultural tourism, local destinations strive to leverage what makes their societies unique, promote the region’s cultural identity, in order to boost economic growth. According to Opačić [24], tourism valorisation of cultural heritage includes several steps, starting with the identification of cultural heritage suitable for conversion into tourism attractions.
Communicating cultural heritage to visitors in understandable and engaging ways is challenging, yet it represents an increasingly important aspect of tourism destination marketing. Presently, the relationship between tourism and culture is transformed by the affordances of new technologies. Advanced learning technologies can accommodate the provision of value-added cultural experiences to tourists, improve representation, engage visitors with content in innovative ways, support cultural revitalisation and increase the overall attractiveness of heritage sites. Cultural locations and spaces can be enriched by scanning and overlaying virtual annotations on top of these places. Digital applications can provide cultural tourists with fast knowledge acquisition: immediate cultural location-based information of specific points of interest.
Advanced digital technologies for cultural heritage management, study and analysis, conservation, restoration, and preservation, access and communication, are transforming conservation and scientific research methods in cultural heritage, as well as people’s experience of cultural heritage relics, monuments and events. At the same time, digital technologies are enhancing the experiential and interpretive dynamics of the cultural heritage representations and creating innovative environments for consumers to discover, capture and experience cultural heritage and events, thus promoting the creation of new value chains for tourism through the digitisation of cultural heritage. Integral to this is the combined use of innovative digitisation technologies and affordable consumer electronic equipment, which is making innovative cultural heritage experiences accessible to all.
Following a literature review methodology, in the subsequent sections, our research will provide a critical appraisal of carefully selected work from recent scientific literature and contribute to the systematisation of the current knowledge in the field towards the identification of key challenges and the extraction of new insights in terms of potential for practical applications and future research directions in the area.
2. Methodology
The methodology applied for this research was exploratory in nature, based on an extensive review of the available literature. In recent years, there has been an increasing number of studies linking cultural heritage with digital technologies. To offer a broad overview of this emerging research domain, a review of academic literature was undertaken to examine relevant publications in the Web of Science database. The purpose of this study was to review the existing literature to describe the state-of-the-art in key areas of interest and to identify key challenges, in order to extract new insights in terms of potential for practical applications and future research directions in the area.
Scope of literature review:
Literature sources: all corpora included in the Web of Science database
Timeframe: 2017–2021 (covering all eligible literature in last 5 years)
Geographical coverage: all-inclusive
Literature selection: the literature search (covering a time window of the last 5 years) used two groups of keywords. The first group included the terms “heritage experience”. The second group referred to ADR detection and included the terms: “Technology”, “Digital”, “Virtual” etc. Thus, the literature search query for article selection had the logical form of: {heritage experience} AND {digital technology, or equiv.}.
An electronic search of Web of Science (3 June 2021) was performed using the following search string: [(heritage experience)] AND [(Technology) OR (Digital) OR (Virtual) OR (Immersive) OR (Augmented) OR (Scan) OR (3D) OR (WEB) OR (PORTAL) OR (Application) OR (Mobile)].
The initial search resulted in a total of 824 articles. All search results were subsequently scanned, based on the title and abstract, to determine whether the respective article should be included or not in the study. Following screening, 246 documents were excluded as they were not directly linked to the specific topic of the present study. This resulted in a final collection of a total of 578 articles. Additional records were identified through their list of references and other sources. Extracted information included [25] article title, author and publication year; [26] area of focus; [13] technology; [21] quality-related information; and [9] results and significant findings from the application.
We also reviewed research action under the EU Horizon 2020 programme (2014–2020) [27]. The Horizon 2020 programme featured initiatives aimed at the preservation and valorisation of cultural heritage, specifically targeting areas such as the curation of digital assets and advanced digitisation, cost-effective technologies for advanced 3D modelling, Virtual Museums etc. [7].
With regards to museums, the study revealed a strong correlation with digitisation, followed by a strong interest in immersive technologies (virtual/augmented reality) and the development of specific applications for museum visitors to experience the exhibits. Mobile access is also among the focus points, while 3D representation is gaining ground. Less discussion is made about web portals in the present time frame, as this was strongly pursued in earlier times.
The most significant insights drawn are outlined in the following sections. Section 3 provides an overview of the study results, Section 4 discusses the application of advanced digitisation technologies for powering cultural heritage experiences, while Section 5 summarises the current challenges and examines the way forward.
3. Results
With regards to the application of digital technologies in cultural heritage, the study revealed a broad scope: (a) to promote the preservation of cultural heritage and assist scientific research, and (b) to enhance the communication of digital heritage. The following Figure (Figure 1) provides an example of key applications of advanced digitisation technologies and applications in the context of cultural heritage. Three main areas have been identified: preservation, research on, and communication of cultural heritage. The first two relate to making sense of and interpreting cultural heritage. The latter is about how cultural heritage is divulged and experienced.
Figure 1.
Key applications of advanced digitisation in cultural heritage.
Accommodating cultural heritage experiences mainly falls under communication of cultural heritage and cultural tourism, but also draws from advances in cultural heritage preservation. The study revealed that digital technologies are reshaping the cultural heritage value chains, by affecting both the back office, where the cultural resources originate and the front-end, where the consumption of cultural heritage experiences takes place. Consumption itself can flow through different communication channels. Discussing museum experiences, Simone et al. [28, 29] identified four main areas, in which digital transformation is taking place: [25] in the back-office, referring to the preservation of cultural heritage; [26] onsite, relating to the quality of the museum experience; [13] online, referring to how the museum experience can be extended beyond museum doors; and [21] onlife, referring to the creation of wider, hybrid museum experiences.
In the following section we discuss critical developments in the back office and front end.
4. Discussion
4.1 Back-office capabilities
The research results identified several novel digital transformation approaches to improve the preservation of cultural heritage in the back-office. Focal point is the digital preservation of cultural heritage.
4.1.1 Digitisation and archiving
Digitisation and archiving constitute the foundations for the development of virtual heritage applications and services. Recent advancements in information and communication technologies have made it possible for heritage artefacts to be preserved and made available in digital form. Already in 2011, the European Commission’s Recommendation on the Digitisation and Online Accessibility of Cultural Material (2011/711/EU) emphasised [30] the importance of bringing Europe’s cultural heritage online, for improving access to and promoting the re-use of digitised cultural heritage material, e.g. by the creative sector. Recent years have seen a growing trend towards the digitisation of museum collections, library and archival cultural resources (such as manuscripts, books, and journals), sound and audiovisual heritage, immovable cultural heritage (such as monuments, historical buildings and archaeological sites), as well as intangible cultural assets, such as the living arts, and traditional folklore culture (traditional dances and folk customs) [31].
Cloud computing technologies facilitate the aggregation, storage and reuse of digital content. A wide array of national and international, thematic or domain-specific cultural heritage aggregators have emerged, allowing for joined up access to cultural resources. This includes digital platforms, applications and repositories that bring together cultural collections from cultural institutions through virtualisation. Europe’s digital platform for cultural heritage, Europeana provides access to over 50 million items, (including image, text, sound, video and 3D material) from the collections of over 3000 libraries, archives, museums, galleries and audio-visual collections from all over Europe. Similarly, the Google Cultural Institute provides access to cultural artefacts from 1400 cultural institutions in 70 countries and to more than 3000 online exhibitions curated by experts. Its services include 1800 Street View captures of famous museums and landmarks that allow users to immerse themselves and get a 360° view of these places from anywhere, using their PCs, laptops or mobile devices.
Nonetheless, challenges to aggregation continue to persist, referring to issues that range from the lack of granular and rich descriptive metadata [32], to technical interoperability and copyright [33, 34].
Organised memory institutions (e.g. museums, libraries, archives) hold disparate collections of heritage resources, in terms of format, organisation and storage. Digitisation efforts are often fragmented and ineffective, with smaller organisations lacking the knowledge and resources needed, and further being unable to attract significant visibility to impact tourism and the local economy. To ensure the quality of digitised materials, digitisation standards and specifications, as well as guidelines concerning interoperability and metadata descriptions. Several domain-specific standards have been adopted, such as LIDO for museums, EAD for archives and METS for digital libraries. Led by Europeana, standardisation and common approaches for content and metadata management represent an on-going priority for Europe. The Europeana Data Model (EDM) is a cross-domain metadata standard that enables content interoperability, exchange and aggregation.
The need to improve the quality of cultural heritage metadata and collection management systems (CMSs) is stressed [35]. Metadata enrichment through crowdsourcing annotation services [32] and machine learning techniques [36, 37, 38, 39] is recommended.
Digitisation goes beyond the transposition of analog objects into the digital space. A key concern is the digital readiness of cultural heritage institutions, concerning their capacity to adapt and adopt disruptive technologies in their practices. This implies a profound transformation of their internal processes and calls for a holistic approach at different levels in the institutions (organisational, operational, human resources, etc).
Cultural heritage is not limited to culture repositories and digital collections. Intangible cultural assets include the living arts, traditional folklore culture and crafts [40]. Furthermore, the largely untapped potential of cultural heritage embedded in individual memory needs to be harnessed through citizen’s collection and interpretation of digital heritage [41, 42, 43]. Nowadays, we are witnessing a transition towards social engagement in culture that is driven by the rise of digital content production and digital connectivity. Crowdsourcing and digital storytelling can help capture the living cultural heritage of different communities or groups, in terms of practices, representations, expressions, knowledge, skills [43, 44]. The collection and archiving of a community’s or region’s cultural memory further involve raising public awareness about the importance of their cultural heritage and gearing up citizens’ knowledge about and access to this heritage. Social platforms can provide the means for citizens to share their local knowledge and everyday experience with others, together with the contribution of cultural institutions [41, 42].
4.1.2 Advanced digitisation technologies
In recent years, numerous initiatives have been launched, involving the modelling and rendering of digital cultural heritage in 3D for research and preservation and/or communication purposes. Cultural heritage artefacts that traditionally were presented in two-dimensional form are increasingly captured, modelled and visualised in three dimensions and/or in 3D virtual environments [45]. The 3-D model can be realised from physical objects (according to a “reverse modelling” process) or directly assembling 3-D digital forms. It could provide a photorealistic image or a symbolic representation of the original artefact, depending on the object and the scope of the representation. Advanced digitisation technologies have been instrumental in transforming conservation and scientific research methods in cultural heritage, as well as people’s experience of cultural heritage relics, monuments and events [28, 29, 46, 47, 48, 49].
New technologies and techniques, such as photogrammetry [50] and laser scanning [51], allow for more accurate digital capture of 3-dimensional objects and surfaces. Early efforts included modelling and rendering of artefacts and architecture from photographs (e.g. [52]). Current applications employ advanced non-contact close or long range scanning, modelling, analysis and computer-based visualisation tools to produce: three-dimensional (3D) recordings of archaeological sites and buildings (e.g. [53]) and of small objects (e.g. [54]) and three-dimensional visualisations of cultural heritage sites, using airborne scanning and imaging [55] or from geospatial information [56].
Digitisation technologies are already in use in the field of heritage (e.g. in museums or monuments). Limited research and solutions can be found regarding the interaction between cultural heritage, scan/photo and immersive technologies, potential customers and visitors’ experiences in the cultural tourism locations, events and attractions. The use of advanced 2D/3D digital scanning of small and large-scale objects and surroundings and the valorisation of the digital spatial models produced has the potential to create unique, immersive cultural experiences, using affordable consumer electronics.
4.2 Front-end delivery
4.2.1 Communication of cultural heritage and cultural tourism
The introduction of technologies for cultural heritage communication has revolutionised the concept of “museum experience” and “historic site experience”, leading to the emergence of novel services powered by the digitisation of cultural heritage artefacts. In recent decades many GLAM organisations (i.e. Galleries, Libraries, Archives, and Museums) and historic sites have launched initiatives to improve representation, engage visitors with content in new, innovative ways and support cultural revitalisation. Technology is increasingly used to support novel forms of narration and improve the historic interpretation of cultural heritage, i.e. the ways visitors make meanings and connections to the past, in order to experience culture [57, 58]. Digital technologies have the power to transform history and cultural heritage into a living resource, also in the form of embodied Interactions [59]. Complex interconnected cyber-physical systems for experiencing cultural heritage can thus emerge [60].
4.2.2 Hybrid onsite experiences
Digital technologies have the potential to redefine the way visitors experience and connect with museums and cultural sites, as well as expand the on-site visit with prior and post experiences [61]. Most heritage sites are multidimensional and dense with meaning. Different cultural heritage contexts can coexist and serve as a backdrop for many overlapping services and experiences, suitable for diverse audiences. As the motivations, interests and degree of engagement of audiences vary, creating relevant cultural heritage experiences that engage and resonate with each visitor represents a challenge for the sector. The early “electronic” tour guide model was based on predefined itineraries, complemented by the synchronised delivery of textual and/or multimedia content that was curated by museum experts. The evolution of Ubiquitous Computing technologies enabled the introduction of context-aware and location-aware features that offer the user increased degrees of freedom (e.g. through the combined use of mobile phones and RFID technologies). Traditional linear narratives (e.g. in the form of typical guided tours) are thus replaced by visitor-directed narratives, in which the visitor is in control of the content they consume [62]. The former involved mainly applications that mimic the purposes and experience of a traditional guided tour (e.g. mobile tour guides and museum websites), while the latter is facilitated by technologies that help create interactive and immersive experiences [63, 64]. The challenge is to not merely communicate scientific information, but to develop audience-centric experiences that achieve a narrative and emotional engagement of the audience [65, 66]. Better cultural accessibility and inclusion has the potential to enhance citizens’ well-being [67].
Digital storytelling represents an effective way to deliver content in cultural heritage [68], achieve emotional resonance and create human connection. Immersive experiences can put the visitor in control of the content and make them feel as if they are a part of the exhibit or program [63, 64]. The combination of advanced immersive technologies with storytelling techniques, can help create emotive digital experiences that bring cultural heritage sites and events alive [69].
For example, the GIFT project developed a portfolio of free, open-source tools and methods that museums can use to enrich the physical experiences of their visitors, such as a Mobile Game to encourage collaborative storytelling within the museum [70]. The EMOTIVE project developed immersive storylines using a range of technologies including virtual and augmented reality and mobile phone apps, to create more ‘emotive’ cultural site visits [69].
Audio augmented environments, featuring concepts like sonic narratives, soundscapes and binaural spatialisation have also been explored in the cultural heritage context [71].
Digital technologies can help enrich a physical visit to a cultural site or a museum, with rich complementary content tailored to the needs of the visitor. Heritage sites can be enriched by scanning and overlaying virtual annotations on top of these places. Devices can be directed at the point of interest, and 2D/3D e.g. texts, sounds, icons, videos are added to the users’ view. These applications provide visitors with immediate cultural location-based information regarding specific points of interest [72], they allow them to explore personal cultural locations and points of interest [73] and give them opportunities to discover new or unknown knowledge [74]. Every cultural site has a specific “wow-factor” that has to be captured and transported via digital technology and digital communication channels. From the provider view, new business models and opportunities can be identified and initiated using novel digitisation technologies [75], which can help increase the competitiveness of the cultural site [76] with significant spillover effects on the local economy. Recent research efforts go beyond visual, sound, or narrative enhancements, to provide visitors with multisensory stimulations [77].
For people with disabilities, digital innovations, such as sign language video avatars, tactile artwork reliefs, barrier-free apps for museum visits, etc., can help them overcome access barriers to cultural spaces [78].
4.2.3 Online experiences—virtual museums
The online presence of museums is changing, with traditional museum websites evolving into online “walk-through” museums, featuring dynamic exhibitions and versatile multimedia explorations of cultural heritage [79]. Advances in digitisation technologies provide the means for new forms of engagement with museum-held heritage via 3D multimedia-rich museum websites, online “walk-through” museum explorations [80], virtual museum exhibitions [81], virtual environment system installed within a real museum [82], online community platforms [83, 84], etc. This has also led to novel context-aware representations of cultural heritage, produced from merging 3D models of artefacts, like in the case of the MUVI - Virtual Museum of Daily Life [85].
Ambient intelligence technologies (AmI) provide the means for personalizing content and user interfaces (UIs) to each individual user [86].
Virtual museums have also emerged. The term virtual museum describes “a collection of digitally recorded images, sound files, text documents, and other data of historical, scientific, or cultural interest that are accessed through electronic media” [87]. Unlike a traditional museum, a virtual museum does not house actual objects. Instead, it channels digitised representations of artefacts from one or several cultural institutions (e.g. Google Cultural Institute). A virtual museum can also be set up, in order to provide access to cultural sites that are otherwise invisible to the general public and to cultural artefacts that no longer exist or are impossible to view physically [88, 89, 90, 91, 92, 93, 94].
For example, the “Underwater Malta”, virtual museum for submerged cultural heritage, provides access to numerous inaccessible underwater archaeological sites [95]. This is facilitated by recent advances in underwater imaging and processing software and the development of 3D photogrammetry of submerged sites. The GRAVITATE project developed software tools to allow archaeologists and curators to reconstruct shattered or broken cultural objects and to identify and re-unify parts of a cultural object that has been separated across collections [96]. Similarly, the Time Machine project [25] combines digitised archives from museums and libraries, with Artificial Intelligence and Big Data mining, to offer richer interpretations of our past. The project developed a 4D (3D plus time) engine which ‘recreates’ past cities, as digital twins of our cities (‘Mirror Worlds’) that is accessible from mobile phones or through specific Augmented Reality interfaces. 3D models can “time-travel” users to historical places, cities or buildings in a specific historic period to deliver a feeling of how daily life was [97, 98]. While in the past, 3D visualisation content was merely used to digitally visualise historic artefacts (e.g. replace damaged or missing physical artefacts), presently realistic virtual heritage environments can be developed to contain 3D models of heritage object, thus visualising three-dimensional contexts as well, in order to offer a much richer user experience. For example, the INCEPTION project revolved around the development of heritage“spaces”(complex architectures and sites) and semantic enrichment for creating 3d Models to cater for multiple purposes, in line with the specific needs and level of knowledge of the end-users [99].
In the last two years the Covid-19 pandemic, which disrupted the daily routine of museums and brought the global tourism industry to a standstill prompted the adoption of innovative approaches building on digital instruments, such as virtual tours [100, 101] that build on geo-referenced sequences of panoramic images and three-dimensional models of the actual site [102]. According to Nemtinov et al. [103] “Virtual trips to memorable places allow experiencing history in an interactive form; they attract the audience and promote interest in museums and, accordingly, strengthen their cultural and educational functions”.
4.2.4 Onlife cultural experiences
Advances in digital technologies are helping connect a person’s cultural heritage experiences to their “daily” life, i.e. they provide the means to enhance other experiences outside the museum site, based on experiences at the museum site [61].
Overall, immersive experiences for cultural heritage can take shape in a variety of forms, including the use of augmented reality, virtual reality, serious games and gamification, embodied interaction etc. Central ls the role of Virtual Reality and Augmented Reality which allow for new ways of experiencing cultural heritage. Augmented reality can overlay additional information onto existing artefacts, while virtual reality facilitates fully immersive virtual explorations [104]. Virtual Reality head-mounted displays (HMD) provide a first-person stereoscopic view of the environment and the ability to physically change the looking direction with head rotations. Mixed reality and semi-immersive VR applications combine the real and virtual environments [26]. Audio augmented environments, featuring concepts like sonic narratives, soundscapes and binaural spatialisation are also being explored in the cultural heritage context [71].
4.2.5 Mobile applications
Central to this shift is the rise of mobile communications and the rapid uptake of smartphone technology. Users today are increasingly connected to the world of digital information while “on the go” via mobile devices. GSMA [105] estimates that the number of unique mobile subscribers will reach 5.8 billion by 2025, equivalent to 70% of the world’s population. Τhe European Travel Commission (ETC) stressing that ownership of mobile devices and mobile online access is high and increasing, reached the conclusion that in the future those travelling within and to Europe will be smartphone-equipped and will have both the technological capability and the online access to engage with online content that will make their travel and experiences richer and smoother. Smartphones, tablets and other mobile and handheld technologies are increasingly playing a central role in touristic experience mediation [106] and as a travel tool during all stages of tourism consumption [84]. Wang et al. [106] noted that “the instant information support of smartphones enables tourists to more effectively solve problems, share experiences, and “store”memories”. Dickinson et al. [84] concluded that smartphones are enhancing temporal and spatial awareness, i.e. are evolving society’s contemporary understandings of time and relationships with place and things in significant ways for travel by (a) enhancing the temporal alignment between people, the things they need, destinations and attractions, and activity options and (b) providing tourists with enhanced spatial tools and awareness (place-related information and content), ultimately leading to knowledge-rich visitors.
5. Conclusions and way forward
The present chapter discussed the emerging paradigm of cultural heritage experience, as shaped by the continuous advances in information technologies. Cultural heritage experiences can benefit greatly from the current trend towards digitalisation, systematisation and accessibility of digital cultural resources. Advancements in technology are creating new opportunities to digitise cultural heritage for preservation, conservation, restoration, research, as well as for broader online access and re-use by citizens and various sectors, such as tourism. The amount of digitised cultural material is growing very rapidly, also thanks to numerous initiatives for the digitisation of cultural heritage content belonging to museums, libraries, archives etc. The experience of cultural heritage is constantly evolving and is expected to continue to develop in complexity and sophistication, as new opportunities for the technological representation and communication of culture emerge and the types of transaction and encounter with tangible and intangible cultural heritage increase.
The experience of cultural heritage will continue to develop in complexity [9]. The shift towards more sophisticated technology-enhanced cultural heritage experiences is facilitated by the growing digitisation of cultural heritage, continuous innovations in 2D/3D digital scanning, in image enhancement and 3D reproduction, and in immersion technologies, the emergence of advanced equipment (such as head-mounted displays (HMD), the affordances of ubiquitous computing and mobile applications and novel easy-to-use authoring tools. Advanced digitisation, and digital preservation and accessibility have been instrumental in transforming people’s experience of cultural heritage assets, relics, and monuments, as well as of intangible heritage. The ViMM project concluded that harnessing additional technologies will have increasing relevance for museums and cultural heritage institutions, including: artificial intelligence; computer vision; deep learning/machine learning; and adaptive cognitive methods [107].
Given the strong economic spill over effect of cultural heritage, interest in advancing the communication of cultural heritage goes beyond the traditional players of the sector: GLAM organisations (i.e. Galleries, Libraries, Archives, and Museums), cultural and historic sites etc.
Regions and local communities increasingly pursue the valorisation of their local heritage, leveraging what makes their societies unique, to promote their cultural identity and boost economic growth. Communicating cultural heritage to visitors in understandable and engaging ways is challenging, yet it represents an increasingly important aspect of tourism destination marketing. Presently, the relationship between tourism and culture is transformed by the affordances of new technologies. Advanced digital technologies can accommodate the provision of value-added learning experiences to visitors to increase the attractiveness of heritage sites.
Developing cultural heritage experiences is a complex socio-technical, multidisciplinary exercise that spans several distinct areas: Back-office capabilities, in terms of accessible, quality digital cultural content, need to be in place, to subsequently be able to design, develop and provide cultural heritage experiences, and to align these with the requirements and expectations of the intended users.
Required technical capabilities thus range from back-office infrastructures for digitisation, standardisation, storage and retrieval, computing, connectivity, instrumentation and online accessibility of cultural materia, to authoring, service development and collaboration tools, to digital solutions for the technology-enabled experiencing of cultural events, arts and heritage and the creation of new applications on new devices, for different audiences and for different purposes.
Offerings should be expert-driven and user-oriented at the same time. Meeting the need for customised cultural heritage communication offerings implies continuously developing cultural heritage experience services and new processes of value creation. This implies a need for rapid development, and continuous adaptation and enrichment of the offerings. On the backend side, this translates into tailored content creation and easy content reuse, re-purposing and improvement, which in turn call for access to sources of relevant digital content (Cultural Heritage repositories) and domain expertise, besides technical skills and authoring environment capabilities. As value shifts to visitor experiences, cultural heritage experience development essentially should be regarded as a co-creation exercise, in which cultural heritage experience services are shaped and continuously adapted through the interactions between consumers and service providers [108].
Of particular importance is to increase awareness and acceptance of the “Digital Turn” within the cultural heritage community. Increasingly cultural institutions will have to incorporate technology solutions within their day-to-day responsibilities. Skills requirements and organisational aspects also need to be considered.
\n',keywords:"cultural heritage, heritage experience, virtual heritage, digitisation, immersive technologies",chapterPDFUrl:"https://cdn.intechopen.com/pdfs/78132.pdf",chapterXML:"https://mts.intechopen.com/source/xml/78132.xml",downloadPdfUrl:"/chapter/pdf-download/78132",previewPdfUrl:"/chapter/pdf-preview/78132",totalDownloads:187,totalViews:0,totalCrossrefCites:0,dateSubmitted:"April 1st 2021",dateReviewed:"June 30th 2021",datePrePublished:"August 17th 2021",datePublished:null,dateFinished:"August 17th 2021",readingETA:"0",abstract:"The present chapter investigates the emerging paradigm of cultural heritage experience, as shaped by the continuous advances in information technologies. Recent years have seen the growing digitisation of cultural heritage, leveraged by innovative information technologies (imaging technologies, multimedia, virtual reality etc.). Advanced digitisation, and digital preservation and accessibility have been instrumental in transforming conservation and scientific research methods in the field of cultural heritage, as well as people’s experience of cultural heritage assets, relics, and monuments. Digitisation and immersion technologies are already in use in the context of cultural tourism in museums and on location. At the same time, a manifold of new applications and services can be generated from the adoption and adaptation of relevant technologies already applied in other sectors (e.g. 2D/3D digital scanning technologies applied in the construction industry). The present chapter will provide a thorough review of relevant digital technologies and existing work in the field, highlighting important research efforts and achievements; and will discuss the current challenges and promising avenues for future work. Following a literature review methodology, our research will provide a critical appraisal of carefully selected work from recent scientific literature and contribute to the systematisation of the current knowledge in the field towards the identification of key challenges and the extraction of new insights in terms of potential for practical applications and future research directions in the area.",reviewType:"peer-reviewed",bibtexUrl:"/chapter/bibtex/78132",risUrl:"/chapter/ris/78132",signatures:"Dimitra Pappa and Constantin Makropoulos",book:{id:"10660",type:"book",title:"Heritage - New Paradigm",subtitle:null,fullTitle:"Heritage - New Paradigm",slug:null,publishedDate:null,bookSignature:"Prof. Daniela Turcanu-Carutiu",coverURL:"https://cdn.intechopen.com/books/images_new/10660.jpg",licenceType:"CC BY 3.0",editedByType:null,isbn:"978-1-83969-621-3",printIsbn:"978-1-83969-620-6",pdfIsbn:"978-1-83969-622-0",isAvailableForWebshopOrdering:!0,editors:[{id:"176482",title:"Prof.",name:"Daniela",middleName:null,surname:"Turcanu-Carutiu",slug:"daniela-turcanu-carutiu",fullName:"Daniela Turcanu-Carutiu"}],productType:{id:"1",title:"Edited Volume",chapterContentType:"chapter",authoredCaption:"Edited by"}},authors:null,sections:[{id:"sec_1",title:"1. Introduction",level:"1"},{id:"sec_2",title:"2. Methodology",level:"1"},{id:"sec_3",title:"3. Results",level:"1"},{id:"sec_4",title:"4. Discussion",level:"1"},{id:"sec_4_2",title:"4.1 Back-office capabilities",level:"2"},{id:"sec_4_3",title:"4.1.1 Digitisation and archiving",level:"3"},{id:"sec_5_3",title:"4.1.2 Advanced digitisation technologies",level:"3"},{id:"sec_7_2",title:"4.2 Front-end delivery",level:"2"},{id:"sec_7_3",title:"4.2.1 Communication of cultural heritage and cultural tourism",level:"3"},{id:"sec_8_3",title:"4.2.2 Hybrid onsite experiences",level:"3"},{id:"sec_9_3",title:"4.2.3 Online experiences—virtual museums",level:"3"},{id:"sec_10_3",title:"4.2.4 Onlife cultural experiences",level:"3"},{id:"sec_11_3",title:"4.2.5 Mobile applications",level:"3"},{id:"sec_14",title:"5. Conclusions and way forward",level:"1"}],chapterReferences:[{id:"B1",body:'UNESCO (1989). Draft Medium Term Plan 1990-1995. 25 C/4, 1989:57'},{id:"B2",body:'Ramos, C. M., & Mafé-García, A. (2019). 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A number of options are suggested for development of global water resource and food production.",book:{id:"7645",slug:"desalination-challenges-and-opportunities",title:"Desalination",fullTitle:"Desalination - Challenges and Opportunities"},signatures:"Sheikh Mohammad Fakhrul Islam and Zahurul Karim",authors:[{id:"288119",title:"Prof.",name:"S.M. Fakhrul",middleName:null,surname:"Islam",slug:"s.m.-fakhrul-islam",fullName:"S.M. Fakhrul Islam"},{id:"288121",title:"Prof.",name:"Zahurul",middleName:null,surname:"Karim",slug:"zahurul-karim",fullName:"Zahurul Karim"}]},{id:"60850",doi:"10.5772/intechopen.76624",title:"Wastewater Treatment Using Membrane Technology",slug:"wastewater-treatment-using-membrane-technology",totalDownloads:2961,totalCrossrefCites:14,totalDimensionsCites:29,abstract:"Water contamination by heavy metals, cyanides and dyes is increasing globally and needs to be addressed as this will lead to water scarcity as well as water quality. Different techniques have been used to clean and renew water for human consumption and agricultural purposes but they each have limitations. Among those techniques, membrane technology is promising to solve the issues. Nanotechnology present a great potential in wastewater treatment to improve treatment efficiency of wastewater treatment plants. In addition, nanotechnology supplement water supply through safe use of modern water sources. This chapter reviews recent development in membrane technology for wastewater treatment. Different types of membrane technologies, their properties, mechanisms advantages, limitations and promising solutions have been discussed.",book:{id:"6539",slug:"wastewater-and-water-quality",title:"Wastewater and Water Quality",fullTitle:"Wastewater and Water Quality"},signatures:"Azile Nqombolo, Anele Mpupa, Richard M. Moutloali and Philiswa\nN. 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This chapter presents a review on fundamentals and applications of conventional Fenton, leading advanced technologies in the Fenton process, and reuse methods of iron containing sludge to synthetic and real wastewaters are discussed. Finally, future trends and some guidelines for Fenton processes are given.",book:{id:"9415",slug:"advanced-oxidation-processes-applications-trends-and-prospects",title:"Advanced Oxidation Processes",fullTitle:"Advanced Oxidation Processes - Applications, Trends, and Prospects"},signatures:"Min Xu, Changyong Wu and Yuexi Zhou",authors:[{id:"307479",title:"Dr.",name:"Changyong",middleName:null,surname:"Wu",slug:"changyong-wu",fullName:"Changyong Wu"},{id:"307546",title:"Prof.",name:"Yuexi",middleName:null,surname:"Zhou",slug:"yuexi-zhou",fullName:"Yuexi Zhou"},{id:"311139",title:"Dr.",name:"Min",middleName:null,surname:"Xu",slug:"min-xu",fullName:"Min Xu"}]},{id:"67689",doi:"10.5772/intechopen.86952",title:"Membrane Distillation: Basics, Advances, and Applications",slug:"membrane-distillation-basics-advances-and-applications",totalDownloads:1444,totalCrossrefCites:9,totalDimensionsCites:20,abstract:"Membrane technology as an emerging separation process has become competitive with other separation techniques in recent decades. Among pressure-driven and isothermal membrane processes, membrane distillation (MD) as a thermally driven process has come out to put an end to hardships of such processes like distillation. MD process can be used in a wide variety of applications such as desalination and wastewater treatment. Generally, MD is a process which water is a main component of the feed solution and only water vapor can pass through a hydrophobic membrane pores. With four main configurations different from each other by their condensation procedure, the performance of MD process is limited due to the lack of appropriate module, membrane, and energy consumption rate. In recent years, many experiments have been carried out to find well-suited membrane type and module. Also, applying solar or waste heat as heat source and the capability of coupling with other processes like forward osmosis and osmotic distillation distinguish MD process from other membrane processes. This chapter addresses membrane characteristics, MD applications, transport mechanisms, and process challenges.",book:{id:"8915",slug:"advances-in-membrane-technologies",title:"Advances in Membrane Technologies",fullTitle:"Advances in Membrane Technologies"},signatures:"Mohammad Reza Shirzad Kebria and Ahmad Rahimpour",authors:[{id:"289042",title:"Associate Prof.",name:"Ahmad",middleName:null,surname:"Rahimpour",slug:"ahmad-rahimpour",fullName:"Ahmad Rahimpour"},{id:"289043",title:"Mr.",name:"Mohammad Reza",middleName:null,surname:"Shirzad Kebria",slug:"mohammad-reza-shirzad-kebria",fullName:"Mohammad Reza Shirzad Kebria"}]}],mostDownloadedChaptersLast30Days:[{id:"70242",title:"Advancements in the Fenton Process for Wastewater Treatment",slug:"advancements-in-the-fenton-process-for-wastewater-treatment",totalDownloads:1873,totalCrossrefCites:9,totalDimensionsCites:21,abstract:"Fenton is considered to be one of the most effective advanced treatment processes in the removal of many hazardous organic pollutants from refractory/toxic wastewater. It has many advantages, but drawbacks are significant such as a strong acid environment, the cost of reagents consumption, and the large production of ferric sludge, which limits Fenton’s further application. The development of Fenton applications is mainly achieved by improving oxidation efficiency and reducing sludge production. This chapter presents a review on fundamentals and applications of conventional Fenton, leading advanced technologies in the Fenton process, and reuse methods of iron containing sludge to synthetic and real wastewaters are discussed. Finally, future trends and some guidelines for Fenton processes are given.",book:{id:"9415",slug:"advanced-oxidation-processes-applications-trends-and-prospects",title:"Advanced Oxidation Processes",fullTitle:"Advanced Oxidation Processes - Applications, Trends, and Prospects"},signatures:"Min Xu, Changyong Wu and Yuexi Zhou",authors:[{id:"307479",title:"Dr.",name:"Changyong",middleName:null,surname:"Wu",slug:"changyong-wu",fullName:"Changyong Wu"},{id:"307546",title:"Prof.",name:"Yuexi",middleName:null,surname:"Zhou",slug:"yuexi-zhou",fullName:"Yuexi Zhou"},{id:"311139",title:"Dr.",name:"Min",middleName:null,surname:"Xu",slug:"min-xu",fullName:"Min Xu"}]},{id:"71660",title:"Applications of Chemical Kinetics in Heterogeneous Catalysis",slug:"applications-of-chemical-kinetics-in-heterogeneous-catalysis",totalDownloads:1104,totalCrossrefCites:3,totalDimensionsCites:3,abstract:"Chemical kinetics is a key subdiscipline of physical chemistry that studies the reaction rate in every elemental step and corresponding catalytic mechanism. It mainly concludes molecular reaction dynamics, catalytic dynamics, elemental reaction dynamics, macrodynamics, and microdynamics. Such a research field has wide applications in heterogeneous catalysis. Based on the Arrhenius plot fitted by the catalytic conversions below 15% without the mass transfer effect and heat transfer effect, the apparent activation energy echoing with the intrinsically catalytic sites and the pre-exponential factor echoing with the relative number of active sites can be, respectively, derived from the slope and intercept of the Arrhenius plots, which can be used to compare the intrinsically catalytic activity of different catalysts and the relative amount of active sites. Reaction orders of both reactants and products are derived from the reaction rate equation and also fitted by the catalytic conversions below 15% without the mass transfer effect and heat transfer effect. According to the acquired reaction orders, the reaction mechanism can be proposed and even defined in some simple reactions. Therefore, investigations of chemical kinetics are of extreme importance and meaning in heterogeneous catalysis.",book:{id:"9415",slug:"advanced-oxidation-processes-applications-trends-and-prospects",title:"Advanced Oxidation Processes",fullTitle:"Advanced Oxidation Processes - Applications, Trends, and Prospects"},signatures:"Zhenhua Zhang, Li-Ping Fan and Yue-Juan Wang",authors:[{id:"312555",title:"Prof.",name:"Zhenhua",middleName:null,surname:"Zhang",slug:"zhenhua-zhang",fullName:"Zhenhua Zhang"},{id:"316868",title:"Ms.",name:"Li-Ping",middleName:null,surname:"Fan",slug:"li-ping-fan",fullName:"Li-Ping Fan"},{id:"316869",title:"Prof.",name:"Yue-Juan",middleName:null,surname:"Wang",slug:"yue-juan-wang",fullName:"Yue-Juan Wang"}]},{id:"77416",title:"Application of Water Quality Index for the Assessment of Water from Different Sources in Nigeria",slug:"application-of-water-quality-index-for-the-assessment-of-water-from-different-sources-in-nigeria",totalDownloads:516,totalCrossrefCites:0,totalDimensionsCites:1,abstract:"Water quality index (WQI) provides a single number that expresses the overall water quality, at a certain location and time, based on several water quality parameters. The objective of WQI is to turn complex water quality data into information that is understandable and usable by the public. A number of indices have been developed to summarize water quality data in an easily expressible and easily understood format. The WQI is basically a mathematical means of calculating a single value from multiple test results. This chapter discusses, in detail, the application of a water quality index for the assessment of water quality to different several water sources in Nigeria.",book:{id:"9921",slug:"promising-techniques-for-wastewater-treatment-and-water-quality-assessment",title:"Promising Techniques for Wastewater Treatment and Water Quality Assessment",fullTitle:"Promising Techniques for Wastewater Treatment and Water Quality Assessment"},signatures:"Ruth Olubukola Ajoke Adelagun, Emmanuel Edet Etim and Oko Emmanuel Godwin",authors:[{id:"256167",title:"Dr.",name:"Emmanuel",middleName:null,surname:"Edet Etim",slug:"emmanuel-edet-etim",fullName:"Emmanuel Edet Etim"},{id:"345734",title:"Mr.",name:"Oko",middleName:null,surname:"Emmanuel Godwin",slug:"oko-emmanuel-godwin",fullName:"Oko Emmanuel Godwin"},{id:"345735",title:"Dr.",name:"Ruth",middleName:null,surname:"Olubukola Ajoke Adelagun",slug:"ruth-olubukola-ajoke-adelagun",fullName:"Ruth Olubukola Ajoke Adelagun"}]},{id:"71348",title:"Water Treatment and Desalination",slug:"water-treatment-and-desalination",totalDownloads:1049,totalCrossrefCites:2,totalDimensionsCites:3,abstract:"Water covers a large area of the earth that reaches about three quarters of the surface of this planet, but we cannot say that all of this water is fresh or drinkable; according to many statistics, the percentage of fresh water reaches about 1% of the total water on earth. But with the great need for fresh water, whether for drinking or other purposes such as agriculture, the search for water treatment methods has become much larger. One of the most important of these methods that have been developed is desalination of seawater using desalination plants; therefore, we will address here the most important methods used in desalination and water treatment.",book:{id:"7645",slug:"desalination-challenges-and-opportunities",title:"Desalination",fullTitle:"Desalination - Challenges and Opportunities"},signatures:"Mona M. Amin Abdel-Fatah and Ghada Ahmed Al Bazedi",authors:[{id:"286268",title:"Associate Prof.",name:"Mona",middleName:null,surname:"Abdel-Fatah",slug:"mona-abdel-fatah",fullName:"Mona Abdel-Fatah"},{id:"295973",title:"Dr.",name:"Ghada",middleName:null,surname:"Al-Basedi",slug:"ghada-al-basedi",fullName:"Ghada Al-Basedi"}]},{id:"69228",title:"Advances in Passive Cooling Design: An Integrated Design Approach",slug:"advances-in-passive-cooling-design-an-integrated-design-approach",totalDownloads:2073,totalCrossrefCites:1,totalDimensionsCites:4,abstract:"Incorporating passive cooling devices within building design requires analysis of device variables and actions to improve cooling performance, maximize efficiency, and integrate with building elements. Improving devices performance requires understanding the relation of devices to design stages, building elements, and working mechanism, and actions performed by devices to enhance cooling process and effectiveness. Therefore, designers could integrate passive devices as intrinsic design elements. The current research introduces SARS as an innovative classification of passive devices based on cooling actions that are performed by a device like storing, avoidance, removal or slowing (SARS). All actions, devices, and variables were discussed and analyzed to help integrate them within design stages: analysis, designing, and performance. Understanding actions will help maximize the performance of the devices, combine two or more devices together, and integrate the devices’ deign in design process. Combining more devices together to perform more than one function will move passive design to a new level to become as whole building design approach and to be a core design element.",book:{id:"8496",slug:"zero-and-net-zero-energy",title:"Zero and Net Zero Energy",fullTitle:"Zero and Net Zero Energy"},signatures:"Ahmed A.Y. Freewan",authors:[{id:"284866",title:"Dr.",name:"Ahmed A.Y.",middleName:null,surname:"Freewan",slug:"ahmed-a.y.-freewan",fullName:"Ahmed A.Y. Freewan"}]}],onlineFirstChaptersFilter:{topicId:"287",limit:6,offset:0},onlineFirstChaptersCollection:[],onlineFirstChaptersTotal:0},preDownload:{success:null,errors:{}},subscriptionForm:{success:null,errors:{}},aboutIntechopen:{},privacyPolicy:{},peerReviewing:{},howOpenAccessPublishingWithIntechopenWorks:{},sponsorshipBooks:{sponsorshipBooks:[],offset:8,limit:8,total:0},allSeries:{pteSeriesList:[{id:"14",title:"Artificial Intelligence",numberOfPublishedBooks:9,numberOfPublishedChapters:87,numberOfOpenTopics:6,numberOfUpcomingTopics:0,issn:"2633-1403",doi:"10.5772/intechopen.79920",isOpenForSubmission:!0},{id:"7",title:"Biomedical Engineering",numberOfPublishedBooks:12,numberOfPublishedChapters:98,numberOfOpenTopics:3,numberOfUpcomingTopics:0,issn:"2631-5343",doi:"10.5772/intechopen.71985",isOpenForSubmission:!0}],lsSeriesList:[{id:"11",title:"Biochemistry",numberOfPublishedBooks:27,numberOfPublishedChapters:287,numberOfOpenTopics:4,numberOfUpcomingTopics:0,issn:"2632-0983",doi:"10.5772/intechopen.72877",isOpenForSubmission:!0},{id:"25",title:"Environmental Sciences",numberOfPublishedBooks:1,numberOfPublishedChapters:9,numberOfOpenTopics:4,numberOfUpcomingTopics:0,issn:"2754-6713",doi:"10.5772/intechopen.100362",isOpenForSubmission:!0},{id:"10",title:"Physiology",numberOfPublishedBooks:11,numberOfPublishedChapters:139,numberOfOpenTopics:4,numberOfUpcomingTopics:0,issn:"2631-8261",doi:"10.5772/intechopen.72796",isOpenForSubmission:!0}],hsSeriesList:[{id:"3",title:"Dentistry",numberOfPublishedBooks:8,numberOfPublishedChapters:129,numberOfOpenTopics:0,numberOfUpcomingTopics:2,issn:"2631-6218",doi:"10.5772/intechopen.71199",isOpenForSubmission:!1},{id:"6",title:"Infectious Diseases",numberOfPublishedBooks:13,numberOfPublishedChapters:107,numberOfOpenTopics:3,numberOfUpcomingTopics:1,issn:"2631-6188",doi:"10.5772/intechopen.71852",isOpenForSubmission:!0},{id:"13",title:"Veterinary Medicine and Science",numberOfPublishedBooks:10,numberOfPublishedChapters:103,numberOfOpenTopics:3,numberOfUpcomingTopics:0,issn:"2632-0517",doi:"10.5772/intechopen.73681",isOpenForSubmission:!0}],sshSeriesList:[{id:"22",title:"Business, Management and Economics",numberOfPublishedBooks:1,numberOfPublishedChapters:12,numberOfOpenTopics:2,numberOfUpcomingTopics:1,issn:null,doi:"10.5772/intechopen.100359",isOpenForSubmission:!0},{id:"23",title:"Education and Human Development",numberOfPublishedBooks:0,numberOfPublishedChapters:0,numberOfOpenTopics:2,numberOfUpcomingTopics:0,issn:null,doi:"10.5772/intechopen.100360",isOpenForSubmission:!1},{id:"24",title:"Sustainable Development",numberOfPublishedBooks:0,numberOfPublishedChapters:10,numberOfOpenTopics:4,numberOfUpcomingTopics:1,issn:null,doi:"10.5772/intechopen.100361",isOpenForSubmission:!0}],testimonialsList:[{id:"6",text:"It is great to work with the IntechOpen to produce a worthwhile collection of research that also becomes a great educational resource and guide for future research endeavors.",author:{id:"259298",name:"Edward",surname:"Narayan",institutionString:null,profilePictureURL:"https://mts.intechopen.com/storage/users/259298/images/system/259298.jpeg",slug:"edward-narayan",institution:{id:"3",name:"University of Queensland",country:{id:null,name:"Australia"}}}},{id:"13",text:"The collaboration with and support of the technical staff of IntechOpen is fantastic. The whole process of submitting an article and editing of the submitted article goes extremely smooth and fast, the number of reads and downloads of chapters is high, and the contributions are also frequently cited.",author:{id:"55578",name:"Antonio",surname:"Jurado-Navas",institutionString:null,profilePictureURL:"https://s3.us-east-1.amazonaws.com/intech-files/0030O00002bRisIQAS/Profile_Picture_1626166543950",slug:"antonio-jurado-navas",institution:{id:"720",name:"University of Malaga",country:{id:null,name:"Spain"}}}}]},series:{item:{id:"24",title:"Sustainable Development",doi:"10.5772/intechopen.100361",issn:null,scope:"
\r\n\tTransforming our World: the 2030 Agenda for Sustainable Development endorsed by United Nations and 193 Member States, came into effect on Jan 1, 2016, to guide decision making and actions to the year 2030 and beyond. Central to this Agenda are 17 Goals, 169 associated targets and over 230 indicators that are reviewed annually. The vision envisaged in the implementation of the SDGs is centered on the five Ps: People, Planet, Prosperity, Peace and Partnership. This call for renewed focused efforts ensure we have a safe and healthy planet for current and future generations.
\r\n
\r\n\t
\r\n
\r\n\tThis Series focuses on covering research and applied research involving the five Ps through the following topics:
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\r\n\t1. Sustainable Economy and Fair Society that relates to SDG 1 on No Poverty, SDG 2 on Zero Hunger, SDG 8 on Decent Work and Economic Growth, SDG 10 on Reduced Inequalities, SDG 12 on Responsible Consumption and Production, and SDG 17 Partnership for the Goals
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\r\n\t2. Health and Wellbeing focusing on SDG 3 on Good Health and Wellbeing and SDG 6 on Clean Water and Sanitation
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\r\n\t
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\r\n\t3. Inclusivity and Social Equality involving SDG 4 on Quality Education, SDG 5 on Gender Equality, and SDG 16 on Peace, Justice and Strong Institutions
\r\n
\r\n\t
\r\n
\r\n\t4. Climate Change and Environmental Sustainability comprising SDG 13 on Climate Action, SDG 14 on Life Below Water, and SDG 15 on Life on Land
\r\n
\r\n\t
\r\n
\r\n\t5. Urban Planning and Environmental Management embracing SDG 7 on Affordable Clean Energy, SDG 9 on Industry, Innovation and Infrastructure, and SDG 11 on Sustainable Cities and Communities.
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\r\n\tThe series also seeks to support the use of cross cutting SDGs, as many of the goals listed above, targets and indicators are all interconnected to impact our lives and the decisions we make on a daily basis, making them impossible to tie to a single topic.
",coverUrl:"https://cdn.intechopen.com/series/covers/24.jpg",latestPublicationDate:"May 19th, 2022",hasOnlineFirst:!0,numberOfPublishedBooks:0,editor:{id:"262440",title:"Prof.",name:"Usha",middleName:null,surname:"Iyer-Raniga",slug:"usha-iyer-raniga",fullName:"Usha Iyer-Raniga",profilePictureURL:"https://s3.us-east-1.amazonaws.com/intech-files/0030O00002bRYSXQA4/Profile_Picture_2022-02-28T13:55:36.jpeg",biography:"Usha Iyer-Raniga is a professor in the School of Property and Construction Management at RMIT University. Usha co-leads the One Planet Network’s Sustainable Buildings and Construction Programme (SBC), a United Nations 10 Year Framework of Programmes on Sustainable Consumption and Production (UN 10FYP SCP) aligned with Sustainable Development Goal 12. The work also directly impacts SDG 11 on Sustainable Cities and Communities. She completed her undergraduate degree as an architect before obtaining her Masters degree from Canada and her Doctorate in Australia. Usha has been a keynote speaker as well as an invited speaker at national and international conferences, seminars and workshops. Her teaching experience includes teaching in Asian countries. She has advised Austrade, APEC, national, state and local governments. She serves as a reviewer and a member of the scientific committee for national and international refereed journals and refereed conferences. She is on the editorial board for refereed journals and has worked on Special Issues. Usha has served and continues to serve on the Boards of several not-for-profit organisations and she has also served as panel judge for a number of awards including the Premiers Sustainability Award in Victoria and the International Green Gown Awards. Usha has published over 100 publications, including research and consulting reports. Her publications cover a wide range of scientific and technical research publications that include edited books, book chapters, refereed journals, refereed conference papers and reports for local, state and federal government clients. She has also produced podcasts for various organisations and participated in media interviews. She has received state, national and international funding worth over USD $25 million. Usha has been awarded the Quarterly Franklin Membership by London Journals Press (UK). Her biography has been included in the Marquis Who's Who in the World® 2018, 2016 (33rd Edition), along with approximately 55,000 of the most accomplished men and women from around the world, including luminaries as U.N. Secretary-General Ban Ki-moon. In 2017, Usha was awarded the Marquis Who’s Who Lifetime Achiever Award.",institutionString:null,institution:{name:"RMIT University",institutionURL:null,country:{name:"Australia"}}},editorTwo:null,editorThree:null},subseries:{paginationCount:5,paginationItems:[{id:"91",title:"Sustainable Economy and Fair Society",coverUrl:"https://cdn.intechopen.com/series_topics/covers/91.jpg",isOpenForSubmission:!0,editor:{id:"181603",title:"Dr.",name:"Antonella",middleName:null,surname:"Petrillo",slug:"antonella-petrillo",fullName:"Antonella Petrillo",profilePictureURL:"https://mts.intechopen.com/storage/users/181603/images/system/181603.jpg",biography:"Antonella Petrillo is a Professor at the Department of Engineering of the University of Naples “Parthenope”, Italy. She received her Ph.D. in Mechanical Engineering from the University of Cassino. Her research interests include multi-criteria decision analysis, industrial plant, logistics, manufacturing and safety. She serves as an Associate Editor for the International Journal of the Analytic Hierarchy Process. She is a member of AHP Academy and a member of several editorial boards. She has over 160 Scientific Publications in International Journals and Conferences and she is the author of 5 books on Innovation and Decision Making in Industrial Applications and Engineering.",institutionString:null,institution:{name:"Parthenope University of Naples",institutionURL:null,country:{name:"Italy"}}},editorTwo:null,editorThree:null},{id:"92",title:"Health and Wellbeing",coverUrl:"https://cdn.intechopen.com/series_topics/covers/92.jpg",isOpenForSubmission:!0,editor:{id:"348225",title:"Prof.",name:"Ann",middleName:null,surname:"Hemingway",slug:"ann-hemingway",fullName:"Ann Hemingway",profilePictureURL:"https://s3.us-east-1.amazonaws.com/intech-files/0033Y000035LZFoQAO/Profile_Picture_2022-04-11T14:55:40.jpg",biography:"Professor Hemingway is a public health researcher, Bournemouth University, undertaking international and UK research focused on reducing inequalities in health outcomes for marginalised and excluded populations and more recently focused on equine assisted interventions.",institutionString:null,institution:{name:"Bournemouth University",institutionURL:null,country:{name:"United Kingdom"}}},editorTwo:null,editorThree:null},{id:"93",title:"Inclusivity and Social Equity",coverUrl:"https://cdn.intechopen.com/series_topics/covers/93.jpg",isOpenForSubmission:!0,editor:{id:"210060",title:"Prof. Dr.",name:"Ebba",middleName:null,surname:"Ossiannilsson",slug:"ebba-ossiannilsson",fullName:"Ebba Ossiannilsson",profilePictureURL:"https://s3.us-east-1.amazonaws.com/intech-files/0030O00002g6LkBQAU/Profile_Picture_2022-02-28T13:31:48.png",biography:'Professor Dr. Ebba Ossiannilsson is an independent researcher, expert, consultant, quality auditor and influencer in the fields of open, flexible online and distance learning (OFDL) and the "new normal". Her focus is on quality, innovation, leadership, and personalised learning. She works primarily at the strategic and policy levels, both nationally and internationally, and with key international organisations. She is committed to promoting and improving OFDL in the context of SDG4 and the future of education. Ossiannilsson has more than 20 years of experience in her current field, but more than 40 years in the education sector. She works as a reviewer and expert for the European Commission and collaborates with the Joint Research Centre for Quality in Open Education. Ossiannilsson also collaborates with ITCILO and ICoBC (International Council on Badges and Credentials). She is a member of the ICDE Board of Directors and has previously served on the boards of EDEN and EUCEN. Ossiannilsson is a quality expert and reviewer for ICDE, EDEN and the EADTU. She chairs the ICDE OER Advocacy Committee and is a member of the ICDE Quality Network. She is regularly invited as a keynote speaker at conferences. She is a guest editor for several special issues and a member of the editorial board of several scientific journals. She has published more than 200 articles and is currently working on book projects in the field of OFDL. Ossiannilsson is a visiting professor at several international universities and was recently appointed Professor and Research Fellow at Victoria University of Wellington, NZ. Ossiannilsson has been awarded the following fellowships: EDEN Fellows, EDEN Council of Fellows, and Open Education Europe. She is a ICDE OER Ambassador, Open Education Europe Ambassador, GIZ Ambassador for Quality in Digital Learning, and part of the Globe-Community of Digital Learning and Champion of SPARC Europe. On a national level, she is a quality developer at the Swedish Institute for Standards (SIS) and for ISO. She is a member of the Digital Skills and Jobs Coalition Sweden and Vice President of the Swedish Association for Distance Education. She is currently working on a government initiative on quality in distance education at the National Council for Higher Education. She holds a Ph.D. from the University of Oulu, Finland.',institutionString:"Swedish Association for Distance Education, Sweden",institution:null},editorTwo:null,editorThree:null},{id:"94",title:"Climate Change and Environmental Sustainability",coverUrl:"https://cdn.intechopen.com/series_topics/covers/94.jpg",isOpenForSubmission:!1,editor:null,editorTwo:null,editorThree:null},{id:"95",title:"Urban Planning and Environmental Management",coverUrl:"https://cdn.intechopen.com/series_topics/covers/95.jpg",isOpenForSubmission:!0,editor:{id:"181079",title:"Dr.",name:"Christoph",middleName:null,surname:"Lüthi",slug:"christoph-luthi",fullName:"Christoph Lüthi",profilePictureURL:"https://s3.us-east-1.amazonaws.com/intech-files/0030O00002bRHSqQAO/Profile_Picture_2022-04-12T15:51:33.png",biography:"Dr. Christoph Lüthi is an urban infrastructure planner with over 25 years of experience in planning and design of urban infrastructure in middle and low-income countries. He holds a Master’s Degree in Urban Development Planning from the University College of London (UCL), and a Ph.D. in Urban Planning & Engineering from TU Berlin. He has conducted applied research on urban planning and infrastructure issues in over 20 countries in Africa and Asia. In 2005 he joined Eawag-Sandec as Leader of the Strategic Environmental Sanitation Planning Group. 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