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  1.  29
    Linear model theory for Lipschitz structures.Seyed-Mohammad Bagheri - 2014 - Archive for Mathematical Logic 53 (7-8):897-927.
    I study definability and types in the linear fragment of continuous logic. Linear variants of several definability theorems such as Beth, Svenonus and Herbrand are proved. At the end, a partial study of the theories of probability algebras, probability algebras with an aperiodic automorphism and AL-spaces is given.
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  2.  11
    The isomorphism theorem for linear fragments of continuous logic.Seyed-Mohammad Bagheri - 2021 - Mathematical Logic Quarterly 67 (2):193-205.
    The ultraproduct construction is generalized to p‐ultramean constructions () by replacing ultrafilters with finitely additive measures. These constructions correspond to the linear fragments of continuous logic and are very close to the constructions in real analysis. A powermean variant of the Keisler‐Shelah isomorphism theorem is proved for. It is then proved that ‐sentences (and their approximations) are exactly those sentences of continuous logic which are preserved by such constructions. Some other applications are also given.
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  3.  35
    The logic of integration.Seyed-Mohammad Bagheri & Massoud Pourmahdian - 2009 - Archive for Mathematical Logic 48 (5):465-492.
    We develop a model theoretic framework for studying algebraic structures equipped with a measure. The real line is used as a value space and its usual arithmetical operations as connectives. Integration is used as a quantifier. We extend some basic results of pure model theory to this context and characterize measurable sets in terms of zero-sets of formulas.
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  4.  29
    Preservation theorems in linear continuous logic.Seyed-Mohammad Bagheri & Roghieh Safari - 2014 - Mathematical Logic Quarterly 60 (3):168-176.
    Linear continuous logic is the fragment of continuous logic obtained by restricting connectives to addition and scalar multiplications. Most results in the full continuous logic have a counterpart in this fragment. In particular a linear form of the compactness theorem holds. We prove this variant and use it to deduce some basic preservation theorems.
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  5.  12
    Extreme types and extremal models.Seyed-Mohammad Bagheri - 2024 - Annals of Pure and Applied Logic 175 (7):103451.
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  6.  42
    A Łoś type theorem for linear metric formulas.Seyed-Mohammad Bagheri - 2010 - Mathematical Logic Quarterly 56 (1):78-84.
    We define an ultraproduct of metric structures based on a maximal probability charge and prove a variant of Łoś theorem for linear metric formulas. We also consider iterated ultraproducts.
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  7.  16
    The logic of linear propositions.Seyed-Mohammad Bagheri - 2019 - Logic Journal of the IGPL 27 (6):836-846.
    I prove linear compactness and linear completeness for various forms of linear propositional logic where the value space is a module over a ring.
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  8.  45
    Random variables and integral logic.Karim Khanaki & Seyed-Mohammad Bagheri - 2011 - Mathematical Logic Quarterly 57 (5):494-503.
    We study model theory of random variables using finitary integral logic. We prove definability of some probability concepts such as having F as distribution function, independence and martingale property. We then deduce Kolmogorov's existence theorem from the compactness theorem.
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  9.  5
    Consistency and interpolation in linear continuous logic.Mahya Malekghasemi & Seyed-Mohammad Bagheri - 2023 - Archive for Mathematical Logic 62 (7):931-939.
    We prove Robinson consistency theorem as well as Craig, Lyndon and Herbrand interpolation theorems in linear continuous logic.
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  10.  13
    Maximality of linear continuous logic.Mahya Malekghasemi & Seyed-Mohammad Bagheri - 2018 - Mathematical Logic Quarterly 64 (3):185-191.
    The linear compactness theorem is a variant of the compactness theorem holding for linear formulas. We show that the linear fragment of continuous logic is maximal with respect to the linear compactness theorem and the linear elementary chain property. We also characterize linear formulas as those preserved by the ultramean construction.
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  11.  20
    Quantified universes and ultraproducts.Alireza Mofidi & Seyed-Mohammad Bagheri - 2012 - Mathematical Logic Quarterly 58 (1-2):63-74.
    A quantified universe is a set M equipped with a Riesz space equation image of real functions on Mn, for each n, and a second order operation equation image. Metric structures 4, graded probability structures 9 and many other structures in analysis are examples of such universes. We define ultraproduct of quantified universes and study properties preserved by this construction. We then discuss logics defined on the basis of classes of quantified universes which are closed under this construction.
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  12.  30
    Omitting Types in an Intermediate Logic.Seyed-Mohammad Bagheri & Massoud Pourmahdian - 2011 - Studia Logica 97 (3):319-328.
    We prove an omitting types theorem and one direction of the related Ryll-Nardzewski theorem for semi-classical theories introduced in [2].
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