Literature DB >> 33532892

A Chinese Conceptual Semantic Feature Dataset (CCFD).

Yaling Deng1,2, Ye Wang3,4, Chenyang Qiu4, Zhenchao Hu5, Wenyang Sun6, Yanzhu Gong4, Xue Zhao7, Wei He7, Lihong Cao8,9,10.   

Abstract

Memory and language are important high-level cognitive functions of humans, and the study of conceptual representation of the human brain is a key approach to reveal the principles of cognition. However, this research is often constrained by the availability of stimulus materials. The research on concept representation often needs to be based on a standardized and large-scale database of conceptual semantic features. Although Western scholars have established a variety of English conceptual semantic feature datasets, there is still a lack of a comprehensive Chinese version. In the present study, a Chinese Conceptual semantic Feature Dataset (CCFD) was established with 1,410 concepts including their semantic features and the similarity between concepts. The concepts were grouped into 28 subordinate categories and seven superior categories artificially. The results showed that concepts within the same category were closer to each other, while concepts between categories were farther apart. The CCFD proposed in this study can provide stimulation materials and data support for related research fields. All the data and supplementary materials can be found at https://osf.io/ug5dt/ .

Entities:  

Keywords:  Chinese; concept; dataset; semantic feature

Year:  2021        PMID: 33532892     DOI: 10.3758/s13428-020-01525-x

Source DB:  PubMed          Journal:  Behav Res Methods        ISSN: 1554-351X


  16 in total

1.  Analyzing the factors underlying the structure and computation of the meaning of chipmunk, cherry, chisel, cheese, and cello (and many other such concrete nouns).

Authors:  George S Cree; Ken McRae
Journal:  J Exp Psychol Gen       Date:  2003-06

2.  Concept Representation Reflects Multimodal Abstraction: A Framework for Embodied Semantics.

Authors:  Leonardo Fernandino; Jeffrey R Binder; Rutvik H Desai; Suzanne L Pendl; Colin J Humphries; William L Gross; Lisa L Conant; Mark S Seidenberg
Journal:  Cereb Cortex       Date:  2015-03-05       Impact factor: 5.357

3.  Similarity of fMRI activity patterns in left perirhinal cortex reflects semantic similarity between words.

Authors:  Rose Bruffaerts; Patrick Dupont; Ronald Peeters; Simon De Deyne; Gerrit Storms; Rik Vandenberghe
Journal:  J Neurosci       Date:  2013-11-20       Impact factor: 6.167

4.  English semantic feature production norms: An extended database of 4436 concepts.

Authors:  Erin M Buchanan; K D Valentine; Nicholas P Maxwell
Journal:  Behav Res Methods       Date:  2019-08

5.  The "Small World of Words" English word association norms for over 12,000 cue words.

Authors:  Simon De Deyne; Danielle J Navarro; Amy Perfors; Marc Brysbaert; Gert Storms
Journal:  Behav Res Methods       Date:  2019-06

6.  English semantic word-pair norms and a searchable Web portal for experimental stimulus creation.

Authors:  Erin M Buchanan; Jessica L Holmes; Marilee L Teasley; Keith A Hutchison
Journal:  Behav Res Methods       Date:  2013-09

Review 7.  Where is the semantic system? A critical review and meta-analysis of 120 functional neuroimaging studies.

Authors:  Jeffrey R Binder; Rutvik H Desai; William W Graves; Lisa L Conant
Journal:  Cereb Cortex       Date:  2009-03-27       Impact factor: 5.357

Review 8.  What Learning Systems do Intelligent Agents Need? Complementary Learning Systems Theory Updated.

Authors:  Dharshan Kumaran; Demis Hassabis; James L McClelland
Journal:  Trends Cogn Sci       Date:  2016-07       Impact factor: 20.229

9.  The Centre for Speech, Language and the Brain (CSLB) concept property norms.

Authors:  Barry J Devereux; Lorraine K Tyler; Jeroen Geertzen; Billi Randall
Journal:  Behav Res Methods       Date:  2014-12

Review 10.  Understanding What We See: How We Derive Meaning From Vision.

Authors:  Alex Clarke; Lorraine K Tyler
Journal:  Trends Cogn Sci       Date:  2015-11       Impact factor: 20.229

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