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Branching generalized quantifiers and natural language

In Peter Gärdenfors (ed.), Generalized Quantifiers. Reidel Publishing Company. pp. 269--298 (1987)

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  1. Generalized Quantifiers in Dependence Logic.Fredrik Engström - 2012 - Journal of Logic, Language and Information 21 (3):299-324.
    We introduce generalized quantifiers, as defined in Tarskian semantics by Mostowski and Lindström, in logics whose semantics is based on teams instead of assignments, e.g., IF-logic and Dependence logic. Both the monotone and the non-monotone case is considered. It is argued that to handle quantifier scope dependencies of generalized quantifiers in a satisfying way the dependence atom in Dependence logic is not well suited and that the multivalued dependence atom is a better choice. This atom is in fact definably equivalent (...)
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  • Ways of Scope Taking.Anna Szabolcsi (ed.) - 1997 - Kluwer Academic Publishers.
    Ways of Scope Taking is concerned with syntactic, semantic and computational aspects of scope. Its starting point is the well-known but often neglected fact that different types of quantifiers interact differently with each other and other operators. The theoretical examination of significant bodies of data, both old and novel, leads to two central claims. (1) Scope is a by-product of a set of distinct Logical Form processes; each quantifier participates in those that suit its particular features. (2) Scope interaction is (...)
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  • Tarski's thesis.Gila Sher - 2008 - In Douglas Patterson (ed.), New essays on Tarski and philosophy. New York: Oxford University Press. pp. 300--339.
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  • Mass Nouns and Plurals.Peter Lasersohn - 2011 - In Claudia Maienborn, Klaus von Heusinger & Paul Portner (eds.), Semantics: An International Handbook of Natural Language Meaning. De Gruyter Mouton. pp. 2.
    Survey of issues pertaining to the semantics of mass and plural nouns.
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  • Generalized quantifiers.Dag Westerståhl - 2008 - Stanford Encyclopedia of Philosophy.
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  • Partially-ordered (branching) generalized quantifiers: A general definition.Gila Sher - 1997 - Journal of Philosophical Logic 26 (1):1-43.
    Following Henkin's discovery of partially-ordered (branching) quantification (POQ) with standard quantifiers in 1959, philosophers of language have attempted to extend his definition to POQ with generalized quantifiers. In this paper I propose a general definition of POQ with 1-place generalized quantifiers of the simplest kind: namely, predicative, or "cardinality" quantifiers, e.g., "most", "few", "finitely many", "exactly α", where α is any cardinal, etc. The definition is obtained in a series of generalizations, extending the original, Henkin definition first to a general (...)
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  • Logic, Language, Information and Computation: 15th International Workshop, Wollic 2008 Edinburgh, Uk, July 1-4, 2008, Proceedings.Wilfrid Hodges & Ruy de Queiroz (eds.) - 2008 - Berlin and New York: Springer.
    Edited in collaboration with FoLLI, the Association of Logic, Language and Information, this book constitutes the 4th volume of the FoLLI LNAI subline; containing the refereed proceedings of the 15th International Workshop on Logic, Language, Information and Computation, WoLLIC 2008, held in Edinburgh, UK, in July 2008. The 21 revised full papers presented together with the abstracts of 7 tutorials and invited lectures were carefully reviewed and selected from numerous submissions. The papers cover all pertinent subjects in computer science with (...)
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  • Natural Density and the Quantifier “Most”.Selçuk Topal & Ahmet Çevik - 2020 - Journal of Logic, Language and Information 29 (4):511-523.
    This paper proposes a formalization of the class of sentences quantified by most, which is also interpreted as proportion of or majority of depending on the domain of discourse. We consider sentences of the form “Most A are B”, where A and B are plural nouns and the interpretations of A and B are infinite subsets of \. There are two widely used semantics for Most A are B: \ > C \) and \ > \dfrac{C}{2} \), where C denotes (...)
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  • Ways of branching quantifers.Gila Sher - 1990 - Linguistics and Philosophy 13 (4):393 - 422.
    Branching quantifiers were first introduced by L. Henkin in his 1959 paper ‘Some Remarks on Infmitely Long Formulas’. By ‘branching quantifiers’ Henkin meant a new, non-linearly structured quantiiier-prefix whose discovery was triggered by the problem of interpreting infinitistic formulas of a certain form} The branching (or partially-ordered) quantifier-prefix is, however, not essentially infinitistic, and the issues it raises have largely been discussed in the literature in the context of finitistic logic, as they will be here. Our discussion transcends, however, the (...)
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  • Truth, Logical Structure, and Compositionality.Gila Sher - 2001 - Synthese 126 (1-2):195-219.
    In this paper I examine a cluster of concepts relevant to the methodology of truth theories: 'informative definition', 'recursive method', 'semantic structure', 'logical form', 'compositionality', etc. The interrelations between these concepts, I will try to show, are more intricate and multi-dimensional than commonly assumed.
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  • Noughty bits: the subatomic scope of negation.Barry Schein - 2016 - Linguistics and Philosophy 39 (6):459-540.
    Since Fodor 1970, negation has worn a Homogeneity Condition to the effect that homogeneous predicates, ) denote homogeneously—all or nothing —to characterize the meaning of – when uttered out-of-the blue, in contrast to –:The mirrors are smooth. The mirrors are not smooth. The mirrors circle the telescope’s reflector. The mirrors do not circle the telescope’s reflector. It has been a problem for philosophical logic and for the semantics of natural language that – appear to defy the Principle of Excluded Middle (...)
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  • Quantification in natural languages (volumes I & II), E. Bach, E. Jelinek, A. Kratzer, and B.h. Partee, eds.Jaap van der Does & Henk Verkuyl - 1999 - Journal of Logic, Language and Information 8 (2):243-251.
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  • Interpreting logical form.Robert May - 1989 - Linguistics and Philosophy 12 (4):387 - 435.
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