Publications

Displaying 101 - 190 of 190
  • Levelt, W. J. M. (2001). The architecture of normal spoken language use. In G. Gupta (Ed.), Cognitive science: Issues and perspectives (pp. 457-473). New Delhi: Icon Publications.
  • Levelt, W. J. M. (1989). De connectionistische mode: Symbolische en subsymbolische modellen van het menselijk gedrag. In C. M. Brown, P. Hagoort, & T. Meijering (Eds.), Vensters op de geest: Cognitie op het snijvlak van filosofie en psychologie (pp. 202-219). Utrecht: Stichting Grafiet.
  • Levelt, W. J. M. (1976). Formal grammars and the natural language user: A review. In A. Marzollo (Ed.), Topics in artificial intelligence (pp. 226-290). Vienna: Springer.
  • Levelt, W. J. M. (1962). Motion breaking and the perception of causality. In A. Michotte (Ed.), Causalité, permanence et réalité phénoménales: Etudes de psychologie expérimentale (pp. 244-258). Louvain: Publications Universitaires.
  • Levelt, W. J. M. (2004). Language. In G. Adelman, & B. H. Smith (Eds.), Elsevier's encyclopedia of neuroscience [CD-ROM] (3rd). Amsterdam: Elsevier.
  • Levelt, W. J. M. (2001). Relations between speech production and speech perception: Some behavioral and neurological observations. In E. Dupoux (Ed.), Language, brain and cognitive development: Essays in honour of Jacques Mehler (pp. 241-256). Cambridge, MA: MIT Press.
  • Levelt, W. J. M., & Kempen, G. (1976). Taal. In J. Michon, E. Eijkman, & L. De Klerk (Eds.), Handboek der Psychonomie (pp. 492-523). Deventer: Van Loghum Slaterus.
  • Levelt, W. J. M. (1989). Working models of perception: Five general issues. In B. A. Elsendoorn, & H. Bouma (Eds.), Working models of perception (pp. 489-503). London: Academic Press.
  • Levinson, S. C. (2001). Motion Verb Stimulus (Moverb) version 2. In S. C. Levinson, & N. J. Enfield (Eds.), Manual for the field season 2001 (pp. 9-13). Nijmegen: Max Planck Institute for Psycholinguistics. doi:10.17617/2.3513706.

    Abstract

    How do languages express ideas of movement, and how do they package different components of this domain, such as manner and path of motion? This task uses one large set of stimuli to gain knowledge of certain key aspects of motion verb meanings in the target language, and expands the investigation beyond simple verbs (e.g., go) to include the semantics of motion predications complete with adjuncts (e.g., go across something). Consultants are asked to view and briefly describe 96 animations of a few seconds each. The task is designed to get linguistic elicitations of motion predications under contrastive comparison with other animations in the same set. Unlike earlier tasks, the stimuli focus on inanimate moving items or “figures” (in this case, a ball).
  • Levinson, S. C. (1989). Conversation. In E. Barnouw (Ed.), International encyclopedia of communications (pp. 407-410). New York: Oxford University Press.
  • Levinson, S. C. (2001). Covariation between spatial language and cognition. In M. Bowerman, & S. C. Levinson (Eds.), Language acquisition and conceptual development (pp. 566-588). Cambridge: Cambridge University Press.
  • Levinson, S. C., Kita, S., & Ozyurek, A. (2001). Demonstratives in context: Comparative handicrafts. In S. C. Levinson, & N. J. Enfield (Eds.), Manual for the field season 2001 (pp. 52-54). Nijmegen: Max Planck Institute for Psycholinguistics. doi:10.17617/2.874663.

    Abstract

    Demonstratives (e.g., words such as this and that in English) pivot on relationships between the item being talked about, and features of the speech act situation (e.g., where the speaker and addressee are standing or looking). However, they are only rarely investigated multi-modally, in natural language contexts. This task is designed to build a video corpus of cross-linguistically comparable discourse data for the study of “deixis in action”, while simultaneously supporting the investigation of joint attention as a factor in speaker selection of demonstratives. In the task, two or more speakers are asked to discuss and evaluate a group of similar items (e.g., examples of local handicrafts, tools, produce) that are placed within a relatively defined space (e.g., on a table). The task can additionally provide material for comparison of pointing gesture practices.
  • Levinson, S. C., Bohnemeyer, J., & Enfield, N. J. (2001). “Time and space” questionnaire for “space in thinking” subproject. In S. C. Levinson, & N. J. Enfield (Eds.), Manual for the field season 2001 (pp. 14-20). Nijmegen: Max Planck Institute for Psycholinguistics.

    Abstract

    This entry contains: 1. An invitation to think about to what extent the grammar of space and time share lexical and morphosyntactic resources − the suggestions here are only prompts, since it would take a long questionnaire to fully explore this; 2. A suggestion about how to collect gestural data that might show us to what extent the spatial and temporal domains, have a psychological continuity. This is really the goal − but you need to do the linguistic work first or in addition. The goal of this task is to explore the extent to which time is conceptualised on a spatial basis.
  • Levinson, S. C. (2004). Deixis. In L. Horn (Ed.), The handbook of pragmatics (pp. 97-121). Oxford: Blackwell.
  • Levinson, S. C. (2001). Maxim. In S. Duranti (Ed.), Key terms in language and culture (pp. 139-142). Oxford: Blackwell.
  • Levinson, S. C., & Toni, I. (2019). Key issues and future directions: Interactional foundations of language. In P. Hagoort (Ed.), Human language: From genes and brain to behavior (pp. 257-261). Cambridge, MA: MIT Press.
  • Levinson, S. C., Enfield, N. J., & Senft, G. (2001). Kinship domain for 'space in thinking' subproject. In S. C. Levinson, & N. J. Enfield (Eds.), Manual for the field season 2001 (pp. 85-88). Nijmegen: Max Planck Institute for Psycholinguistics. doi:10.17617/2.874655.
  • Levinson, S. C., & Wittenburg, P. (2001). Language as cultural heritage - Promoting research and public awareness on the Internet. In J. Renn (Ed.), ECHO - An Infrastructure to Bring European Cultural Heritage Online (pp. 104-111). Berlin: Max Planck Institute for the History of Science.

    Abstract

    The ECHO proposal aims to bring to life the cultural heritage of Europe, through internet technology that encourages collaboration across the Humanities disciplines which interpret it – at the same time making all this scholarship accessible to the citizens of Europe. An essential part of the cultural heritage of Europe is the diverse set of languages used on the continent, in their historical, literary and spoken forms. Amongst these are the ‘hidden languages’ used by minorities but of wide interest to the general public. We take the 18 Sign Languages of the EEC – the natural languages of the deaf - as an example. Little comparative information about these is available, despite their special scientific importance, the widespread public interest and the policy implications. We propose a research project on these languages based on placing fully annotated digitized moving images of each of these languages on the internet. This requires significant development of multi-media technology which would allow distributed annotation of a central corpus, together with the development of special search techniques. The technology would have widespread application to all cultural performances recorded as sound plus moving images. Such a project captures in microcosm the essence of the ECHO proposal: cultural heritage is nothing without the humanities research which contextualizes and gives it comparative assessment; by marrying information technology to humanities research, we can bring these materials to a wider public while simultaneously boosting Europe as a research area.
  • Levinson, S. C., Kita, S., & Enfield, N. J. (2001). Locally-anchored narrative. In S. C. Levinson, & N. J. Enfield (Eds.), Manual for the field season 2001 (pp. 147). Nijmegen: Max Planck Institute for Psycholinguistics. doi:10.17617/2.874660.

    Abstract

    As for 'Locally-anchored spatial gestures task, version 2', a major goal of this task is to elicit locally-anchored spatial gestures across different cultures. “Locally-anchored spatial gestures” are gestures that are roughly oriented to the actual geographical direction of referents. Rather than set up an interview situation, this task involves recording informal, animated narrative delivered to a native-speaker interlocutor. Locally-anchored gestures produced in such narrative are roughly comparable to those collected in the interview task. The data collected can also be used to investigate a wide range of other topics.
  • Levinson, S. C. (2019). Interactional foundations of language: The interaction engine hypothesis. In P. Hagoort (Ed.), Human language: From genes and brain to behavior (pp. 189-200). Cambridge, MA: MIT Press.
  • Levinson, S. C. (2019). Natural forms of purposeful interaction among humans: What makes interaction effective? In K. A. Gluck, & J. E. Laird (Eds.), Interactive task learning: Humans, robots, and agents acquiring new tasks through natural interactions (pp. 111-126). Cambridge, MA: MIT Press.
  • Levinson, S. C. (2001). Space: Linguistic expression. In N. Smelser, & P. Baltes (Eds.), International Encyclopedia of Social and Behavioral Sciences: Vol. 22 (pp. 14749-14752). Oxford: Pergamon.
  • Levinson, S. C. (2001). Place and space in the sculpture of Anthony Gormley - An anthropological perspective. In S. D. McElroy (Ed.), Some of the facts (pp. 68-109). St Ives: Tate Gallery.
  • Levinson, S. C. (2001). Pragmatics. In N. Smelser, & P. Baltes (Eds.), International Encyclopedia of Social and Behavioral Sciences: Vol. 17 (pp. 11948-11954). Oxford: Pergamon.
  • Levinson, S. C., & Enfield, N. J. (2001). Preface and priorities. In S. C. Levinson, & N. J. Enfield (Eds.), Manual for the field season 2001 (pp. 3). Nijmegen: Max Planck Institute for Psycholinguistics.
  • Levshina, N. (2021). Conditional inference trees and random forests. In M. Paquot, & T. Gries (Eds.), Practical Handbook of Corpus Linguistics (pp. 611-643). New York: Springer.
  • Lindström, E. (2004). Melanesian kinship and culture. In A. Majid (Ed.), Field Manual Volume 9 (pp. 70-73). Nijmegen: Max Planck Institute for Psycholinguistics. doi:10.17617/2.1552190.
  • Majid, A. (2019). Preface. In L. J. Speed, C. O'Meara, L. San Roque, & A. Majid (Eds.), Perception Metaphors (pp. vii-viii). Amsterdam: Benjamins.
  • Mak, M., & Willems, R. M. (2021). Mental simulation during literary reading. In D. Kuiken, & A. M. Jacobs (Eds.), Handbook of empirical literary studies (pp. 63-84). Berlin: De Gruyter.

    Abstract

    Readers experience a number of sensations during reading. They do
    not – or do not only – process words and sentences in a detached, abstract
    manner. Instead they “perceive” what they read about. They see descriptions of
    scenery, feel what characters feel, and hear the sounds in a story. These sensa-
    tions tend to be grouped under the umbrella terms “mental simulation” and
    “mental imagery.” This chapter provides an overview of empirical research on
    the role of mental simulation during literary reading. Our chapter also discusses
    what mental simulation is and how it relates to mental imagery. Moreover, it
    explores how mental simulation plays a role in leading models of literary read-
    ing and investigates under what circumstances mental simulation occurs dur-
    ing literature reading. Finally, the effect of mental simulation on the literary
    reader’s experience is discussed, and suggestions and unresolved issues in this
    field are formulated.
  • McQueen, J. M., & Meyer, A. S. (2019). Key issues and future directions: Towards a comprehensive cognitive architecture for language use. In P. Hagoort (Ed.), Human language: From genes and brain to behavior (pp. 85-96). Cambridge, MA: MIT Press.
  • Meira, S., & Levinson, S. C. (2001). Topological tasks: General introduction. In S. C. Levinson, & N. J. Enfield (Eds.), Manual for the field season 2001 (pp. 29-51). Nijmegen: Max Planck Institute for Psycholinguistics. doi:10.17617/2.874665.
  • Meyer, A. S. (2004). The use of eye tracking in studies of sentence generation. In J. M. Henderson, & F. Ferreira (Eds.), The interface of language, vision, and action: Eye movements and the visual world (pp. 191-212). Hove: Psychology Press.
  • Narasimhan, B., Bowerman, M., Brown, P., Eisenbeiss, S., & Slobin, D. I. (2004). "Putting things in places": Effekte linguisticher Typologie auf die Sprachentwicklung. In G. Plehn (Ed.), Jahrbuch der Max-Planck Gesellschaft (pp. 659-663). Göttingen: Vandenhoeck & Ruprecht.

    Abstract

    Effekte linguisticher Typologie auf die Sprach-entwicklung. In G. Plehn (Ed.), Jahrbuch der Max-Planck Gesellsch
  • Neijt, A., Schreuder, R., & Baayen, R. H. (2004). Seven years later: The effect of spelling on interpretation. In L. Cornips, & J. Doetjes (Eds.), Linguistics in the Netherlands 2004 (pp. 134-145). Amsterdam: Benjamins.
  • O'Connor, L. (2004). Going getting tired: Associated motion through space and time in Lowland Chontal. In M. Achard, & S. Kemmer (Eds.), Language, culture and mind (pp. 181-199). Stanford: CSLI.
  • O'Meara, C., Speed, L. J., San Roque, L., & Majid, A. (2019). Perception Metaphors: A view from diversity. In L. J. Speed, C. O'Meara, L. San Roque, & A. Majid (Eds.), Perception Metaphors (pp. 1-16). Amsterdam: Benjamins.

    Abstract

    Our bodily experiences play an important role in the way that we think and speak. Abstract language is, however, difficult to reconcile with this body-centred view, unless we appreciate the role metaphors play. To explore the role of the senses across semantic domains, we focus on perception metaphors, and examine their realisation across diverse languages, methods, and approaches. To what extent do mappings in perception metaphor adhere to predictions based on our biological propensities; and to what extent is there space for cross-linguistic and cross-cultural variation? We find that while some metaphors have widespread commonality, there is more diversity attested than should be comfortable for universalist accounts.
  • Ozyurek, A., & Woll, B. (2019). Language in the visual modality: Cospeech gesture and sign language. In P. Hagoort (Ed.), Human language: From genes and brain to behavior (pp. 67-83). Cambridge, MA: MIT Press.
  • Patterson, R. D., & Cutler, A. (1989). Auditory preprocessing and recognition of speech. In A. Baddeley, & N. Bernsen (Eds.), Research directions in cognitive science: A european perspective: Vol. 1. Cognitive psychology (pp. 23-60). London: Erlbaum.
  • Piai, V., & Zheng, X. (2019). Speaking waves: Neuronal oscillations in language production. In K. D. Federmeier (Ed.), Psychology of Learning and Motivation (pp. 265-302). Elsevier.

    Abstract

    Language production involves the retrieval of information from memory, the planning of an articulatory program, and executive control and self-monitoring. These processes can be related to the domains of long-term memory, motor control, and executive control. Here, we argue that studying neuronal oscillations provides an important opportunity to understand how general neuronal computational principles support language production, also helping elucidate relationships between language and other domains of cognition. For each relevant domain, we provide a brief review of the findings in the literature with respect to neuronal oscillations. Then, we show how similar patterns are found in the domain of language production, both through review of previous literature and novel findings. We conclude that neurophysiological mechanisms, as reflected in modulations of neuronal oscillations, may act as a fundamental basis for bringing together and enriching the fields of language and cognition.
  • Poletiek, F. H., & Stolker, C. J. J. M. (2004). Who decides the worth of an arm and a leg? Assessing the monetary value of nonmonetary damage. In E. Kurz-Milcke, & G. Gigerenzer (Eds.), Experts in science and society (pp. 201-213). New York: Kluwer Academic/Plenum Publishers.
  • Randall, J., Van Hout, A., Weissenborn, J., & Baayen, R. H. (2004). Acquiring unaccusativity: A cross-linguistic look. In A. Alexiadou (Ed.), The unaccusativity puzzle (pp. 332-353). Oxford: Oxford University Press.
  • Ravignani, A., Chiandetti, C., & Kotz, S. (2019). Rhythm and music in animal signals. In J. Choe (Ed.), Encyclopedia of Animal Behavior (vol. 1) (2nd ed., pp. 615-622). Amsterdam: Elsevier.
  • Reesink, G. (2004). Interclausal relations. In G. Booij (Ed.), Morphologie / morphology (pp. 1202-1207). Berlin: Mouton de Gruyter.
  • Roelofs, A. (2004). The seduced speaker: Modeling of cognitive control. In A. Belz, R. Evans, & P. Piwek (Eds.), Natural language generation. (pp. 1-10). Berlin: Springer.

    Abstract

    Although humans are the ultimate “natural language generators”, the area of psycholinguistic modeling has been somewhat underrepresented in recent approaches to Natural Language Generation in computer science. To draw attention to the area and illustrate its potential relevance to Natural Language Generation, I provide an overview of recent work on psycholinguistic modeling of language production together with some key empirical findings, state-of-the-art experimental techniques, and their historical roots. The techniques include analyses of speech-error corpora, chronometric analyses, eyetracking, and neuroimaging.
    The overview is built around the issue of cognitive control in natural language generation, concentrating on the production of single words, which is an essential ingredient of the generation of larger utterances. Most of the work exploited the fact that human speakers are good but not perfect at resisting temptation, which has provided some critical clues about the nature of the underlying system.
  • Roelofs, A., & Schiller, N. (2004). Produzieren von Ein- und Mehrwortäusserungen. In G. Plehn (Ed.), Jahrbuch der Max-Planck Gesellschaft (pp. 655-658). Göttingen: Vandenhoeck & Ruprecht.
  • Rojas-Berscia, L. M. (2019). Nominalization in Shawi/Chayahuita. In R. Zariquiey, M. Shibatani, & D. W. Fleck (Eds.), Nominalization in languages of the Americas (pp. 491-514). Amsterdam: Benjamins.

    Abstract

    This paper deals with the Shawi nominalizing suffixes -su’~-ru’~-nu’ ‘general nominalizer’, -napi/-te’/-tun‘performer/agent nominalizer’, -pi’‘patient nominalizer’, and -nan ‘instrument nominalizer’. The goal of this article is to provide a description of nominalization in Shawi. Throughout this paper I apply the Generalized Scale Model (GSM) (Malchukov, 2006) to Shawi verbal nominalizations, with the intention of presenting a formal representation that will provide a basis for future areal and typological studies of nominalization. In addition, I dialogue with Shibatani’s model to see how the loss or gain of categories correlates with the lexical or grammatical nature of nominalizations. strong nominalization in Shawi correlates with lexical nominalization, whereas weak nominalizations correlate with grammatical nominalization. A typology which takes into account the productivity of the nominalizers is also discussed.
  • Rossi, G. (2021). Conversation analysis (CA). In J. Stanlaw (Ed.), The International Encyclopedia of Linguistic Anthropology. Wiley-Blackwell. doi:10.1002/9781118786093.iela0080.

    Abstract

    Conversation analysis (CA) is an approach to the study of language and social interaction that puts at center stage its sequential development. The chain of initiating and responding actions that characterizes any interaction is a source of internal evidence for the meaning of social behavior as it exposes the understandings that participants themselves give of what one another is doing. Such an analysis requires the close and repeated inspection of audio and video recordings of naturally occurring interaction, supported by transcripts and other forms of annotation. Distributional regularities are complemented by a demonstration of participants' orientation to deviant behavior. CA has long maintained a constructive dialogue and reciprocal influence with linguistic anthropology. This includes a recent convergence on the cross-linguistic and cross-cultural study of social interaction.
  • Rowland, C. F., & Kidd, E. (2019). Key issues and future directions: How do children acquire language? In P. Hagoort (Ed.), Human language: From genes and brain to behavior (pp. 181-185). Cambridge, MA: MIT Press.
  • Rubio-Fernández, P. (2019). Theory of mind. In C. Cummins, & N. Katsos (Eds.), The Handbook of Experimental Semantics and Pragmatics (pp. 524-536). Oxford: Oxford University Press.
  • De Ruiter, J. P. (2004). Response systems and signals of recipiency. In A. Majid (Ed.), Field Manual Volume 9 (pp. 53-55). Nijmegen: Max Planck Institute for Psycholinguistics. doi:10.17617/2.506961.

    Abstract

    Listeners’ signals of recipiency, such as “Mm-hm” or “uh-huh” in English, are the most elementary or minimal “conversational turns” possible. Minimal, because apart from acknowledging recipiency and inviting the speaker to continue with his/her next turn, they do not add any new information to the discourse of the conversation. The goal of this project is to gather cross cultural information on listeners’ feedback behaviour during conversation. Listeners in a conversation usually provide short signals that indicate to the speaker that they are still “with the speaker”. These signals could be verbal (like for instance “mm hm” in English or “hm hm” in Dutch) or nonverbal (visual), like nodding. Often, these signals are produced in overlap with the speaker’s vocalisation. If listeners do not produce these signals, speakers often invite them explicitly (e.g. “are you still there?” in a telephone conversation). Our goal is to investigate what kind of signals are used by listeners of different languages to signal “recipiency” to the speaker.
  • Schmitt, B. M., Schiller, N. O., Rodriguez-Fornells, A., & Münte, T. F. (2004). Elektrophysiologische Studien zum Zeitverlauf von Sprachprozessen. In H. H. Müller, & G. Rickheit (Eds.), Neurokognition der Sprache (pp. 51-70). Tübingen: Stauffenburg.
  • Senft, G. (2004). Sprache, Kognition und Konzepte des Raumes in verschiedenen Kulturen - Zum Problem der Interdependenz sprachlicher und mentaler Strukturen. In L. Jäger (Ed.), Medialität und Mentalität (pp. 163-176). Paderborn: Wilhelm Fink.
  • Senft, G. (2004). What do we really know about serial verb constructions in Austronesian and Papuan languages? In I. Bril, & F. Ozanne-Rivierre (Eds.), Complex predicates in Oceanic languages (pp. 49-64). Berlin: Mouton de Gruyter.
  • Senft, G. (2004). Wosi tauwau topaisewa - songs about migrant workers from the Trobriand Islands. In A. Graumann (Ed.), Towards a dynamic theory of language. Festschrift for Wolfgang Wildgen on occasion of his 60th birthday (pp. 229-241). Bochum: Universitätsverlag Dr. N. Brockmeyer.
  • Senft, G. (2021). A very special letter. In T. Szczerbowski (Ed.), Language "as round as an orange".. In memory of Professor Krystyna Pisarkowa on the 90th anniversary of her birth (pp. 367). Krakow: Uniwersytetu Pedagogicznj.
  • Senft, G. (2001). Das Präsentieren des Forschers im Felde: Eine Einführung auf den Trobriand Inseln. In C. Sütterlin, & F. S. Salter (Eds.), Irenäus Eibl-Eibesfeldt: Zu Person und Werk, Festschrift zum 70. Geburtstag (pp. 188-197). Frankfurt am Main: Peter Lang.
  • Senft, G. (2004). Aspects of spatial deixis in Kilivila. In G. Senft (Ed.), Deixis and demonstratives in Oceanic languages (pp. 59-80). Canberra: Pacific Linguistics.
  • Senft, G. (2004). Introduction. In G. Senft (Ed.), Deixis and demonstratives in Oceanic languages (pp. 1-13). Canberra: Pacific Linguistics.
  • Senft, G., & Heeschen, V. (1989). Humanethologisches Tonarchiv. In Generalverwaltung der MPG (Ed.), Max-Planck-Gesellschaft Jahrbuch 1989 (pp. 246). Göttingen: Vandenhoeck and Ruprecht.
  • Senft, G. (2001). Kevalikuliku: Earthquake magic from the Tobriand Islands (for Unshakebles). In A. Pawley, M. Ross, & D. Tryon (Eds.), The boy from Bundaberg: Studies in Melanesian linguistics in honour of Tom Dutton (pp. 323-331). Canberra: Pacific Linguistics.
  • Senft, G. (2004). Participation and posture. In A. Majid (Ed.), Field Manual Volume 9 (pp. 80-82). Nijmegen: Max Planck Institute for Psycholinguistics. doi:10.17617/2.506964.

    Abstract

    Human ethologists have shown that humans are both attracted to others and at the same time fear them. They refer to this kind of fear with the technical term ‘social fear’ and claim that “it is alleviated with personal acquaintance but remains a principle characteristic of interpersonal behaviour. As a result, we maintain various degrees of greater distance between ourselves and others depending on the amount of confidence we have in the other” (Eibl-Eibesfeldt 1989: 335). The goal of this task is to conduct exploratory, heuristic research to establish a new subproject that – based on a corpus of video data – will investigate various forms of human spatial behaviour cross-culturally.
  • Senft, G. (2001). Sprache, Kognition und Konzepte des Raumes in verschiedenen Kulturen: Affiziert sprachliche Relativität die Philosophie? In L. Salwiczek, & W. Wickler (Eds.), Wie wir die Welt erkennen: Erkenntnisweisen im interdisziplinären Diskurs (pp. 203-242). Freiburg: Karl Alber.
  • Senft, G. (2019). Rituelle Kommunikation. In F. Liedtke, & A. Tuchen (Eds.), Handbuch Pragmatik (pp. 423-430). Stuttgart: J. B. Metzler. doi:10.1007/978-3-476-04624-6_41.

    Abstract

    Die Sprachwissenschaft hat den Begriff und das Konzept ›Rituelle Kommunikation‹ von der vergleichenden Verhaltensforschung übernommen. Humanethologen unterscheiden eine Reihe von sogenannten ›Ausdrucksbewegungen‹, die in der Mimik, der Gestik, der Personaldistanz (Proxemik) und der Körperhaltung (Kinesik) zum Ausdruck kommen. Viele dieser Ausdrucksbewegungen haben sich zu spezifischen Signalen entwickelt. Ethologen definieren Ritualisierung als Veränderung von Verhaltensweisen im Dienst der Signalbildung. Die zu Signalen ritualisierten Verhaltensweisen sind Rituale. Im Prinzip kann jede Verhaltensweise zu einem Signal werden, entweder im Laufe der Evolution oder durch Konventionen, die in einer bestimmten Gemeinschaft gültig sind, die solche Signale kulturell entwickelt hat und die von ihren Mitgliedern tradiert und gelernt werden.
  • Seuren, P. A. M. (1989). A problem in English subject complementation. In D. Jaspers, W. Klooster, Y. Putseys, & P. A. M. Seuren (Eds.), Sentential complementation and the lexicon: Studies in honour of Wim de Geest (pp. 355-375). Dordrecht: Foris.
  • Seuren, P. A. M. (1976). Echo, een studie in negatie. In G. Koefoed, & A. Evers (Eds.), Lijnen van taaltheoretisch onderzoek: Een bundel oorspronkelijke artikelen aangeboden aan prof. dr. H. Schultink (pp. 160-184). Groningen: Tjeenk Willink.
  • Seuren, P. A. M. (2004). How the cognitive revolution passed linguistics by. In F. Brisard (Ed.), Language and revolution: Language and time. (pp. 63-77). Antwerpen: Universiteit van Antwerpen.
  • Seuren, P. A. M. (2001). Language and philosophy. In N. J. Smelser, & P. B. Baltes (Eds.), International encyclopedia of the social and behavioral sciences. Volume 12 (pp. 8297-8303). Amsterdam, NL: Elsevier.
  • Seuren, P. A. M. (1989). Notes on reflexivity. In F. J. Heyvaert, & F. Steurs (Eds.), Worlds behind words: Essays in honour of Prof. Dr. F.G. Droste on the occasion of his sixtieth birthday (pp. 85-95). Leuven: Leuven University Press.
  • Sjerps, M. J., & Chang, E. F. (2019). The cortical processing of speech sounds in the temporal lobe. In P. Hagoort (Ed.), Human language: From genes and brain to behavior (pp. 361-379). Cambridge, MA: MIT Press.
  • Skiba, R. (2004). Revitalisierung bedrohter Sprachen - Ein Ernstfall für die Sprachdidaktik. In H. W. Hess (Ed.), Didaktische Reflexionen "Berliner Didaktik" und Deutsch als Fremdsprache heute (pp. 251-262). Berlin: Staufenburg.
  • Skiba, R. (1989). Funktionale Beschreibung von Lernervarietäten: Das Berliner Projekt P-MoLL. In N. Reiter (Ed.), Sprechen und Hören: Akte des 23. Linguistischen Kolloquiums, Berlin (pp. 181-191). Tübingen: Niemeyer.
  • Stassen, H., & Levelt, W. J. M. (1976). Systemen, automaten en grammatica's. In J. Michon, E. Eijkman, & L. De Klerk (Eds.), Handboek der psychonomie (pp. 100-127). Deventer: Van Loghum Slaterus.
  • Stivers, T. (2004). Question sequences in interaction. In A. Majid (Ed.), Field Manual Volume 9 (pp. 45-47). Nijmegen: Max Planck Institute for Psycholinguistics. doi:10.17617/2.506967.

    Abstract

    When people request information, they have a variety of means for eliciting the information. In English two of the primary resources for eliciting information include asking questions, making statements about their interlocutor (thereby generating confirmation or revision). But within these types there are a variety of ways that these information elicitors can be designed. The goal of this task is to examine how different languages seek and provide information, the extent to which syntax vs prosodic resources are used (e.g., in questions), and the extent to which the design of information seeking actions and their responses display a structural preference to promote social solidarity.
  • Terrill, A. (2004). Coordination in Lavukaleve. In M. Haspelmath (Ed.), Coordinating Constructions. (pp. 427-443). Amsterdam: John Benjamins.
  • Terrill, A. (2001). Warlpiri. In J. Garry, & C. Rubino (Eds.), Facts about the world’s languages: An encyclopedia of the world's major languages past and present (pp. 801-803). New York: H.W. Wilson Press.
  • Thomassen, A., & Kempen, G. (1976). Geheugen. In J. A. Michon, E. Eijkman, & L. F. De Klerk (Eds.), Handboek der Psychonomie (pp. 354-387). Deventer: Van Loghum Slaterus.
  • Thomaz, A. L., Lieven, E., Cakmak, M., Chai, J. Y., Garrod, S., Gray, W. D., Levinson, S. C., Paiva, A., & Russwinkel, N. (2019). Interaction for task instruction and learning. In K. A. Gluck, & J. E. Laird (Eds.), Interactive task learning: Humans, robots, and agents acquiring new tasks through natural interactions (pp. 91-110). Cambridge, MA: MIT Press.
  • Trujillo, J. P., Levinson, S. C., & Holler, J. (2021). Visual information in computer-mediated interaction matters: Investigating the association between the availability of gesture and turn transition timing in conversation. In M. Kurosu (Ed.), Human-Computer Interaction. Design and User Experience Case Studies. HCII 2021 (pp. 643-657). Cham: Springer. doi:10.1007/978-3-030-78468-3_44.

    Abstract

    Natural human interaction involves the fast-paced exchange of speaker turns. Crucially, if a next speaker waited with planning their turn until the current speaker was finished, language production models would predict much longer turn transition times than what we observe. Next speakers must therefore prepare their turn in parallel to listening. Visual signals likely play a role in this process, for example by helping the next speaker to process the ongoing utterance and thus prepare an appropriately-timed response.

    To understand how visual signals contribute to the timing of turn-taking, and to move beyond the mostly qualitative studies of gesture in conversation, we examined unconstrained, computer-mediated conversations between 20 pairs of participants while systematically manipulating speaker visibility. Using motion tracking and manual gesture annotation, we assessed 1) how visibility affected the timing of turn transitions, and 2) whether use of co-speech gestures and 3) the communicative kinematic features of these gestures were associated with changes in turn transition timing.

    We found that 1) decreased visibility was associated with less tightly timed turn transitions, and 2) the presence of gestures was associated with more tightly timed turn transitions across visibility conditions. Finally, 3) structural and salient kinematics contributed to gesture’s facilitatory effect on turn transition times.

    Our findings suggest that speaker visibility--and especially the presence and kinematic form of gestures--during conversation contributes to the temporal coordination of conversational turns in computer-mediated settings. Furthermore, our study demonstrates that it is possible to use naturalistic conversation and still obtain controlled results.
  • Van Berkum, J. J. A., & Nieuwland, M. S. (2019). A cognitive neuroscience perspective on language comprehension in context. In P. Hagoort (Ed.), Human language: From genes and brain to behavior (pp. 429-442). Cambridge, MA: MIT Press.
  • Van Valin Jr., R. D. (2001). Functional linguistics. In M. Aronoff, & J. Rees-Miller (Eds.), The handbook of Linguistics (pp. 319-336). Oxford: Blackwell.
  • Van Berkum, J. J. A. (2004). Sentence comprehension in a wider discourse: Can we use ERPs to keep track of things? In M. Carreiras, Jr., & C. Clifton (Eds.), The on-line study of sentence comprehension: eyetracking, ERPs and beyond (pp. 229-270). New York: Psychology Press.
  • Van Staden, M., Senft, G., Enfield, N. J., & Bohnemeyer, J. (2001). Staged events. In S. C. Levinson, & N. J. Enfield (Eds.), Manual for the field season 2001 (pp. 115-125). Nijmegen: Max Planck Institute for Psycholinguistics. doi:10.17617/2.874668.

    Abstract

    The term “event” is a controversial concept, and the “same” activity or situation can be linguistically encoded in many different ways. The aim of this task is to explore features of event representation in the language of study, in particular, multi-verb constructions, event typicality, and event complexity. The task consists of a description and recollection task using film stimuli, and a subsequent re-enactment of certain scenes by other participants on the basis of these descriptions. The first part of the task collects elaborate and concise descriptions of complex events in order to examine how these are segmented into macro-events, what kind of information is expressed, and how the information is ordered. The re-enactment task is designed to examine what features of the scenes are stereotypically implied.
  • Vernes, S. C. (2019). Neuromolecular approaches to the study of language. In P. Hagoort (Ed.), Human language: From genes and brain to behavior (pp. 577-593). Cambridge, MA: MIT Press.
  • Von Stutterheim, C., & Klein, W. (2004). Die Gesetze des Geistes sind metrisch: Hölderlin und die Sprachproduktion. In H. Schwarz (Ed.), Fenster zur Welt: Deutsch als Fremdsprachenphilologie (pp. 439-460). München: Iudicium.
  • Von Stutterheim, C., & Klein, W. (1989). Referential movement in descriptive and narrative discourse. In R. Dietrich, & C. F. Graumann (Eds.), Language processing in social context (pp. 39-76). Amsterdam: Elsevier.
  • Wilkins, D. (2001). Eliciting contrastive use of demonstratives for objects within close personal space (all objects well within arm’s reach). In S. C. Levinson, & N. J. Enfield (Eds.), Manual for the field season 2001 (pp. 164-168). Nijmegen: Max Planck Institute for Psycholinguistics.
  • Wilkins, D., Kita, S., & Enfield, N. J. (2001). Ethnography of pointing questionnaire version 2. In S. C. Levinson, & N. J. Enfield (Eds.), Manual for the field season 2001 (pp. 136-141). Nijmegen: Max Planck Institute for Psycholinguistics.
  • Wilkins, D. (2001). The 1999 demonstrative questionnaire: “This” and “that” in comparative perspective. In S. C. Levinson, & N. J. Enfield (Eds.), Manual for the field season 2001 (pp. 149-163). Nijmegen: Max Planck Institute for Psycholinguistics.
  • Zhang, Y., Chen, C.-h., & Yu, C. (2019). Mechanisms of cross-situational learning: Behavioral and computational evidence. In Advances in Child Development and Behavior; vol. 56 (pp. 37-63).

    Abstract

    Word learning happens in everyday contexts with many words and many potential referents for those words in view at the same time. It is challenging for young learners to find the correct referent upon hearing an unknown word at the moment. This problem of referential uncertainty has been deemed as the crux of early word learning (Quine, 1960). Recent empirical and computational studies have found support for a statistical solution to the problem termed cross-situational learning. Cross-situational learning allows learners to acquire word meanings across multiple exposures, despite each individual exposure is referentially uncertain. Recent empirical research shows that infants, children and adults rely on cross-situational learning to learn new words (Smith & Yu, 2008; Suanda, Mugwanya, & Namy, 2014; Yu & Smith, 2007). However, researchers have found evidence supporting two very different theoretical accounts of learning mechanisms: Hypothesis Testing (Gleitman, Cassidy, Nappa, Papafragou, & Trueswell, 2005; Markman, 1992) and Associative Learning (Frank, Goodman, & Tenenbaum, 2009; Yu & Smith, 2007). Hypothesis Testing is generally characterized as a form of learning in which a coherent hypothesis regarding a specific word-object mapping is formed often in conceptually constrained ways. The hypothesis will then be either accepted or rejected with additional evidence. However, proponents of the Associative Learning framework often characterize learning as aggregating information over time through implicit associative mechanisms. A learner acquires the meaning of a word when the association between the word and the referent becomes relatively strong. In this chapter, we consider these two psychological theories in the context of cross-situational word-referent learning. By reviewing recent empirical and cognitive modeling studies, our goal is to deepen our understanding of the underlying word learning mechanisms by examining and comparing the two theoretical learning accounts.
  • Zuidema, W., & Fitz, H. (2019). Key issues and future directions: Models of human language and speech processing. In P. Hagoort (Ed.), Human language: From genes and brain to behavior (pp. 353-358). Cambridge, MA: MIT Press.

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