Results for 'Jiji Zhang'

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  1.  44
    A New Minimality Condition for Boolean Accounts of Causal Regularities.Jiji Zhang & Kun Zhang - forthcoming - Erkenntnis:1-20.
    The account of causal regularities in the influential INUS theory of causation has been refined in the recent developments of the regularity approach to causation and of the Boolean methods for inference of deterministic causal structures. A key element in the refinement is to strengthen the minimality or non-redundancy condition in the original INUS account. In this paper, we argue that the Boolean framework warrants a further strengthening of the minimality condition. We motivate our stronger condition by showing, first, that (...)
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  2.  96
    Actual causation: a stone soup essay.Clark Glymour David Danks, Bruce Glymour Frederick Eberhardt, Joseph Ramsey Richard Scheines, Peter Spirtes Choh Man Teng & Zhang Jiji - 2010 - Synthese 175 (2):169--192.
    We argue that current discussions of criteria for actual causation are ill-posed in several respects. (1) The methodology of current discussions is by induction from intuitions about an infinitesimal fraction of the possible examples and counterexamples; (2) cases with larger numbers of causes generate novel puzzles; (3) “neuron” and causal Bayes net diagrams are, as deployed in discussions of actual causation, almost always ambiguous; (4) actual causation is (intuitively) relative to an initial system state since state changes are relevant, but (...)
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  3.  71
    Likelihood and Consilience: On Forster’s Counterexamples to the Likelihood Theory of Evidence.Jiji Zhang & Kun Zhang - 2015 - Philosophy of Science 82 (5):930-940.
    Forster presented some interesting examples having to do with distinguishing the direction of causal influence between two variables, which he argued are counterexamples to the likelihood theory of evidence. In this paper, we refute Forster's arguments by carefully examining one of the alleged counterexamples. We argue that the example is not convincing as it relies on dubious intuitions that likelihoodists have forcefully criticized. More importantly, we show that contrary to Forster's contention, the consilience-based methodology he favored is accountable within the (...)
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  4.  39
    An embarrassment of riches : modeling social preferences in ultimatum games.Cristina Bicchieri & Jiji Zhang - unknown
    Experimental results in Ultimatum, Trust and Social Dilemma games have been interpreted as showing that individuals are, by and large, not driven by selfish motives. But we do not need experiments to know that. In our view, what the experiments show is that the typical economic auxiliary hypothesis of non-tuism should not be generalized to other contexts. Indeed, we know that when the experimental situation is framed as a market interaction, participants will be more inclined to keep more money, share (...)
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  5.  63
    A uniformly consistent estimator of causal effects under the k-Triangle-Faithfulness assumption.Peter Spirtes & Jiji Zhang - unknown
    Spirtes, Glymour and Scheines [Causation, Prediction, and Search Springer] described a pointwise consistent estimator of the Markov equivalence class of any causal structure that can be represented by a directed acyclic graph for any parametric family with a uniformly consistent test of conditional independence, under the Causal Markov and Causal Faithfulness assumptions. Robins et al. [Biometrika 90 491–515], however, proved that there are no uniformly consistent estimators of Markov equivalence classes of causal structures under those assumptions. Subsequently, Kalisch and B¨uhlmann (...)
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  6. Detection of unfaithfulness and robust causal inference.Jiji Zhang & Peter Spirtes - 2008 - Minds and Machines 18 (2):239-271.
    Much of the recent work on the epistemology of causation has centered on two assumptions, known as the Causal Markov Condition and the Causal Faithfulness Condition. Philosophical discussions of the latter condition have exhibited situations in which it is likely to fail. This paper studies the Causal Faithfulness Condition as a conjunction of weaker conditions. We show that some of the weaker conjuncts can be empirically tested, and hence do not have to be assumed a priori. Our results lead to (...)
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  7.  17
    Probabilistic workflow mining.Ricardo Silva, Jiji Zhang & James G. Shanshan - unknown
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  8. A comparison of three Occam’s razors for Markovian causal models.Jiji Zhang - 2013 - British Journal for the Philosophy of Science 64 (2):423-448.
    The framework of causal Bayes nets, currently influential in several scientific disciplines, provides a rich formalism to study the connection between causality and probability from an epistemological perspective. This article compares three assumptions in the literature that seem to constrain the connection between causality and probability in the style of Occam's razor. The trio includes two minimality assumptions—one formulated by Spirtes, Glymour, and Scheines (SGS) and the other due to Pearl—and the more well-known faithfulness or stability assumption. In terms of (...)
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  9. A Lewisian Logic of Causal Counterfactuals.Jiji Zhang - 2013 - Minds and Machines 23 (1):77-93.
    In the artificial intelligence literature a promising approach to counterfactual reasoning is to interpret counterfactual conditionals based on causal models. Different logics of such causal counterfactuals have been developed with respect to different classes of causal models. In this paper I characterize the class of causal models that are Lewisian in the sense that they validate the principles in Lewis’s well-known logic of counterfactuals. I then develop a system sound and complete with respect to this class. The resulting logic is (...)
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  10. The three faces of faithfulness.Jiji Zhang & Peter Spirtes - 2016 - Synthese 193 (4):1011-1027.
    In the causal inference framework of Spirtes, Glymour, and Scheines, inferences about causal relationships are made from samples from probability distributions and a number of assumptions relating causal relations to probability distributions. The most controversial of these assumptions is the Causal Faithfulness Assumption, which roughly states that if a conditional independence statement is true of a probability distribution generated by a causal structure, it is entailed by the causal structure and not just for particular parameter values. In this paper we (...)
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  11.  48
    On the completeness of orientation rules for causal discovery in the presence of latent confounders and selection bias.Jiji Zhang - 2008 - Artificial Intelligence 172 (16-17):1873-1896.
    Causal discovery becomes especially challenging when the possibility of latent confounding and/or selection bias is not assumed away. For this task, ancestral graph models are particularly useful in that they can represent the presence of latent confounding and selection effect, without explicitly invoking unobserved variables. Based on the machinery of ancestral graphs, there is a provably sound causal discovery algorithm, known as the FCI algorithm, that allows the possibility of latent confounders and selection bias. However, the orientation rules used in (...)
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  12. Strong Faithfulness and Uniform Consistency in Causal Inference.Jiji Zhang - unknown
    A fundamental question in causal inference is whether it is possible to reliably infer the manipulation effects from observational data. There are a variety of senses of asymptotic reliability in the statistical literature, among which the most commonly discussed frequentist notions are pointwise consistency and uniform consistency (see, e.g. Bickel, Doksum [2001]). Uniform consistency is in general preferred to pointwise consistency because the former allows us to control the worst case error bounds with a finite sample size. In the sense (...)
     
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  13. A peculiarity in pearl’s logic of interventionist counterfactuals.Jiji Zhang, Wai-Yin Lam & Rafael De Clercq - 2013 - Journal of Philosophical Logic 42 (5):783-794.
    We examine a formal semantics for counterfactual conditionals due to Judea Pearl, which formalizes the interventionist interpretation of counterfactuals central to the interventionist accounts of causation and explanation. We show that a characteristic principle validated by Pearl’s semantics, known as the principle of reversibility, states a kind of irreversibility: counterfactual dependence (in David Lewis’s sense) between two distinct events is irreversible. Moreover, we show that Pearl’s semantics rules out only mutual counterfactual dependence, not cyclic dependence in general. This, we argue, (...)
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  14.  41
    Subjective causal networks and indeterminate suppositional credences.Jiji Zhang, Teddy Seidenfeld & Hailin Liu - 2019 - Synthese 198 (Suppl 27):6571-6597.
    This paper has two main parts. In the first part, we motivate a kind of indeterminate, suppositional credences by discussing the prospect for a subjective interpretation of a causal Bayesian network, an important tool for causal reasoning in artificial intelligence. A CBN consists of a causal graph and a collection of interventional probabilities. The subjective interpretation in question would take the causal graph in a CBN to represent the causal structure that is believed by an agent, and interventional probabilities in (...)
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  15.  64
    On estimation of functional causal models : general results and application to the post-nonlinear causal model.Kun Zhang, Zhikun Wang, Jiji Zhang & Bernhard Scholkopf - unknown
    Compared to constraint-based causal discovery, causal discovery based on functional causal models is able to identify the whole causal model under appropriate assumptions [Shimizu et al. 2006; Hoyer et al. 2009; Zhang and Hyvärinen 2009b]. Functional causal models represent the effect as a function of the direct causes together with an independent noise term. Examples include the linear non-Gaussian acyclic model, nonlinear additive noise model, and post-nonlinear model. Currently, there are two ways to estimate the parameters in the models: (...)
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  16.  43
    Agreeing to disagree and dilation.Jiji Zhang, Hailin Liu & Teddy Seidenfeld - unknown
    We consider Geanakoplos and Polemarchakis’s generalization of Aumman’s famous result on “agreeing to disagree", in the context of imprecise probability. The main purpose is to reveal a connection between the possibility of agreeing to disagree and the interesting and anomalous phenomenon known as dilation. We show that for two agents who share the same set of priors and update by conditioning on every prior, it is impossible to agree to disagree on the lower or upper probability of a hypothesis unless (...)
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  17.  23
    Weakening faithfulness : some heuristic causal discovery algorithms. Zhalama, Jiji Zhang & Wolfgang Mayer - 2017 - International Journal of Data Science and Analytics 3 (2):93-104.
    We examine the performance of some standard causal discovery algorithms, both constraint-based and score-based, from the perspective of how robust they are against failures of the Causal Faithfulness Assumption. For this purpose, we make only the so-called Triangle-Faithfulness assumption, which is a fairly weak consequence of the Faithfulness assumption, and otherwise allows unfaithful distributions. In particular, we allow violations of Adjacency-Faithfulness and Orientation-Faithfulness. We show that the PC algorithm, a representative constraint-based method, can be made more robust against unfaithfulness by (...)
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  18.  74
    Causal Reasoning with Ancestral Graphical Models.Jiji Zhang - 2008 - Journal of Machine Learning Research 9:1437-1474.
    Causal reasoning is primarily concerned with what would happen to a system under external interventions. In particular, we are often interested in predicting the probability distribution of some random variables that would result if some other variables were forced to take certain values. One prominent approach to tackling this problem is based on causal Bayesian networks, using directed acyclic graphs as causal diagrams to relate post-intervention probabilities to pre-intervention probabilities that are estimable from observational data. However, such causal diagrams are (...)
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  19.  13
    A transformational characterization of Markov equivalence for directed acyclic graphs with latent variables.Jiji Zhang & Peter Spirtes - unknown
    Different directed acyclic graphs may be Markov equivalent in the sense that they entail the same conditional independence relations among the observed variables. Chickering provided a transformational characterization of Markov equivalence for DAGs, which is useful in deriving properties shared by Markov equivalent DAGs, and, with certain generalization, is needed to prove the asymptotic correctness of a search procedure over Markov equivalence classes, known as the GES algorithm. For DAG models with latent variables, maximal ancestral graphs provide a neat representation (...)
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  20.  39
    Causal discovery from nonstationary/heterogeneous data : skeleton estimation and orientation determination.Kun Zhang, Biwei Huang, Jiji Zhang, Clark Glymour & Bernhard Schölkopf - unknown
    It is commonplace to encounter nonstationary or heterogeneous data, of which the underlying generating process changes over time or across data sets. Such a distribution shift feature presents both challenges and opportunities for causal discovery. In this paper we develop a principled framework for causal discovery from such data, called Constraint-based causal Discovery from Nonstationary/heterogeneous Data, which addresses two important questions. First, we propose an enhanced constraint-based procedure to detect variables whose local mechanisms change and recover the skeleton of the (...)
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  21.  81
    A Characterization of Markov Equivalence Classes for Ancestral Graphical Models.Jiji Zhang & Peter Spirtes - unknown
    JiJi Zhang and Peter Spirtes. A Characterization of Markov Equivalence Classes for Ancestral Graphical Models.
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  22.  55
    A Transformational Characterization of Markov Equivalence between DAGs with Latent Variables.Jiji Zhang & Peter Spirtes - unknown
    JiJi Zhang and Peter Spirtes. A Transformational Characterization of Markov Equivalence between DAGs with Latent Variables.
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  23.  87
    Error probabilities for inference of causal directions.Jiji Zhang - 2008 - Synthese 163 (3):409 - 418.
    A main message from the causal modelling literature in the last several decades is that under some plausible assumptions, there can be statistically consistent procedures for inferring (features of) the causal structure of a set of random variables from observational data. But whether we can control the error probabilities with a finite sample size depends on the kind of consistency the procedures can achieve. It has been shown that in general, under the standard causal Markov and Faithfulness assumptions, the procedures (...)
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  24.  20
    Towards characterizing Markov equivalence classes for directed acyclic graphs with latent variables.Ayesha Ali, Thomas Richardson, Peter Spirtes & Jiji Zhang - unknown
    It is well known that there may be many causal explanations that are consistent with a given set of data. Recent work has been done to represent the common aspects of these explanations into one representation. In this paper, we address what is less well known: how do the relationships common to every causal explanation among the observed variables of some DAG process change in the presence of latent variables? Ancestral graphs provide a class of graphs that can encode conditional (...)
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  25.  32
    On the unity between observational and experimental causal discovery.Jiji Zhang - 2022 - Theoria. An International Journal for Theory, History and Foundations of Science 37 (1):63-74.
    In “Flagpoles anyone? Causal and explanatory asymmetries”, James Woodward supplements his celebrated interventionist account of causation and explanation with a set of new ideas about causal and explanatory asymmetries, which he extracts from some cutting-edge methods for causal discovery from observational data. Among other things, Woodward draws interesting connections between observational causal discovery and interventionist themes that are inspired in the first place by experimental causal discovery, alluding to a sort of unity between observational and experimental causal discovery. In this (...)
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  26.  17
    A characterization of Markov qquivalence classes for directed acyclic graphs with latent variables.Jiji Zhang - unknown
    Different directed acyclic graphs may be Markov equivalent in the sense that they entail the same conditional indepen- dence relations among the observed variables. Meek characterizes Markov equiva- lence classes for DAGs by presenting a set of orientation rules that can correctly identify all arrow orienta- tions shared by all DAGs in a Markov equiv- alence class, given a member of that class. For DAG models with latent variables, maxi- mal ancestral graphs provide a neat representation that facilitates model search. (...)
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  27.  26
    A Characterization of Lewisian Causal Models.Jiji Zhang - 2023 - In Natasha Alechina, Andreas Herzig & Fei Liang (eds.), Logic, Rationality, and Interaction: 9th International Workshop, LORI 2023, Jinan, China, October 26–29, 2023, Proceedings. Springer Nature Switzerland. pp. 94-108.
    An important component in the interventionist account of causal explanation is an interpretation of counterfactual conditionals as statements about consequences of hypothetical interventions. The interpretation receives a formal treatment in the framework of functional causal models. In Judea Pearl’s influential formulation, functional causal models are assumed to satisfy a “unique-solution” property; this class of Pearlian causal models includes the ones called recursive. Joseph Halpern showed that every recursive causal model is Lewisian, in the sense that from the causal model one (...)
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  28. A Transformational Characterization of Markov Equivalence for Directed Maximal Ancestral Graphs.Jiji Zhang & Peter Spirtes - unknown
    The conditional independence relations present in a data set usually admit multiple causal explanations — typically represented by directed graphs — which are Markov equivalent in that they entail the same conditional independence relations among the observed variables. Markov equivalence between directed acyclic graphs (DAGs) has been characterized in various ways, each of which has been found useful for certain purposes. In particular, Chickering’s transformational characterization is useful in deriving properties shared by Markov equivalent DAGs, and, with certain generalization, is (...)
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  29.  64
    Can the Incompatibilist Get Past the No Past Objection?Jiji Zhang - 2013 - Dialectica 67 (3):345-352.
    I refute Bailey's claim that his argument for incompatibilism is immune to Campbell's No Past Objection. In my refutation I stress a simple point, that nomological necessitation by future world states does not undermine one's freedom with respect to the present world state. My analysis reveals that the No Past Objection challenges van Inwagen's second consequence argument about as much as it does the others, and suggests that the (uncompromising) incompatibilist must pursue some of the options that Bailey regarded as (...)
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  30.  12
    Discussion of "learning equivalence classes of acyclic models with latent and selection variables from multiple datasets with overlapping variables".Jiji Zhang & Ricardo Silva - unknown
    Learning equivalence classes of acyclic models with latent and selection variables from multiple datasets with overlapping variables is discussed. The problem of inferring the presence of latent variables, their relation to the observables, and the relation among themselves, is considered. A different approach for identifying causal structures, one that results in much simpler equivalence classes, is provided. It is found that the computational cost is much higher than the procedure implemented, but if datasets are individually of modest dimensionality, it might (...)
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  31.  33
    Generalized do-calculus with testable causal assumptions.Jiji Zhang - unknown
    A primary object of causal reasoning concerns what would happen to a system under certain interventions. Specifically, we are often interested in estimating the probability distribution of some random variables that would result from forcing some other variables to take certain values. The renowned do-calculus gives a set of rules that govern the identification of such post-intervention probabilities in terms of pre-intervention probabilities, assuming available a directed acyclic graph that represents the underlying causal structure. However, a DAG causal structure is (...)
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  32.  23
    On the identifiability and estimation of functional causal models in the presence of outcome-dependent selection.Kun Zhang, Jiji Zhang, Biwei Huang, Bernhard Schölkopf & Clark Glymour - unknown
    We study the identifiability and estimation of functional causal models under selection bias, with a focus on the situation where the selection depends solely on the effect variable, which is known as outcome-dependent selection. We address two questions of identifiability: the identifiability of the causal direction between two variables in the presence of selection bias, and, given the causal direction, the identifiability of the model with outcome-dependent selection. Regarding the first, we show that in the framework of post-nonlinear causal models, (...)
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  33. Proceedings of the 33rd Conference on Uncertainty in Artificial Intelligence (UAI). Zhalama, Jiji Zhang, Frederick Eberhardt & Wolfgang Mayer - 2017 - Association for Uncertainty in Artificial Intelligence (AUAI).
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  34.  45
    SAT-based causal discovery under weaker assumptions. Zhalama, Jiji Zhang, Frederick Eberhardt & Wolfgang Mayer - 2017 - In Zhalama, Jiji Zhang, Frederick Eberhardt & Wolfgang Mayer (eds.), Proceedings of the 33rd Conference on Uncertainty in Artificial Intelligence (UAI). Association for Uncertainty in Artificial Intelligence (AUAI).
    Using the flexibility of recently developed methods for causal discovery based on Boolean satisfiability solvers, we encode a variety of assumptions that weaken the Faithfulness assumption. The encoding results in a number of SAT-based algorithms whose asymptotic correctness relies on weaker conditions than are standardly assumed. This implementation of a whole set of assumptions in the same platform enables us to systematically explore the effect of weakening the Faithfulness assumption on causal discovery. An important effect, suggested by simulation results, is (...)
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  35.  77
    Underdetermination in causal inference.Jiji Zhang - unknown
    One conception of underdetermination is that it corresponds to the impossibility of reliable inquiry. In other words, underdetermination is defined to be the situation where, given a set of background assumptions and a space of hypotheses, it is logically impossible for any hypothesis selection method to meet a given reliability standard. From this perspective, underdetermination in a given subject of inquiry is a matter of interplay between background assumptions and reliability or success criteria. In this paper I discuss underdetermination in (...)
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  36. Is There a Problem with the Causal Criterion of Event Identity?Rafael De Clercq, Wai-Yin Lam & Jiji Zhang - 2014 - American Philosophical Quarterly 51 (2):109-119.
    In this paper, we take another look at the reasons for which the causal criterion of event identity has been abandoned. We argue that the reasons are not strong. First of all, there is a criterion in the neighborhood of the causal criterion—the counterfactual criterion—that is not vulnerable to any of the putative counterexamples brought up in the literature. Secondly, neither the causal criterion nor the counterfactual criterion suffers from any form of vicious circularity. Nonetheless, we do not recommend adopting (...)
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  37.  75
    Adjacency-Faithfulness and Conservative Causal Inference.Joseph Ramsey, Jiji Zhang & Peter Spirtes - 2006 - In R. Dechter & T. Richardson (eds.), Proceedings of the Twenty-Second Conference Conference on Uncertainty in Artificial Intelligence (2006). Arlington, Virginia: AUAI Press. pp. 401-408.
    Most causal discovery algorithms in the literature exploit an assumption usually referred to as the Causal Faithfulness or Stability Condition. In this paper, we highlight two components of the condition used in constraint-based algorithms, which we call “Adjacency-Faithfulness” and “Orientation- Faithfulness.” We point out that assuming Adjacency-Faithfulness is true, it is possible to test the validity of Orientation- Faithfulness. Motivated by this observation, we explore the consequence of making only the Adjacency-Faithfulness assumption. We show that the familiar PC algorithm has (...)
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  38.  6
    The human rights discourse between liberty and welfare: a dialogue with Jacques Maritain and Amartya Sen.Jiji Philip - 2017 - Baden-Baden, Germany: Nomos.
    Given the fact that the prevalent political debates about the status and significance of liberty and welfare are almost polarised, this book defends both of them as essential to human dignity and well being. Amartya Sen's capability approach is the result of his constructive criticism of John Rawls' political liberalism. Though Jacques Maritain is often regarded as the forerunner of Rawls, he has not yet been discussed in relation to Sen's capability approach. Despite Maritain's pioneering contributions to human rights discourse (...)
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  39.  3
    Being 与西方哲学传统.Jijie Song (ed.) - 2002 - Baoding Shi: Hebei da xue chu ban she.
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  40. Bi jiao Zhong Ri Yangming xue.Junmai Zhang - 1955 - Taibei: Taiwan shang wu yin shu guan.
     
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  41. Che hsüeh i tʻung.Yihong Zhang - 1972
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  42. Kong lao er.Leping Zhang (ed.) - 1974 - Shanghai: Shanghai ren min chu ban she.
     
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  43.  19
    The first AI4TSP competition: Learning to solve stochastic routing problems.Yingqian Zhang, Laurens Bliek, Paulo da Costa, Reza Refaei Afshar, Robbert Reijnen, Tom Catshoek, Daniël Vos, Sicco Verwer, Fynn Schmitt-Ulms, André Hottung, Tapan Shah, Meinolf Sellmann, Kevin Tierney, Carl Perreault-Lafleur, Caroline Leboeuf, Federico Bobbio, Justine Pepin, Warley Almeida Silva, Ricardo Gama, Hugo L. Fernandes, Martin Zaefferer, Manuel López-Ibáñez & Ekhine Irurozki - 2023 - Artificial Intelligence 319 (C):103918.
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  44. Zhang Gaowen shou xie Mozi jing shuo jie.Huiyan Zhang - 1977 - Edited by Di Mo.
     
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  45. Zhang Zai ji.Zai Zhang - 1978 - Beijing: Xin hua shu dian Beijing fa xing suo fa xing.
     
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  46.  84
    The Dream Structure of Pinter's Plays. [REVIEW]Vera M. Jiji - 1978 - Thought: Fordham University Quarterly 53 (1):115-116.
  47. Zhang Hongshan ji.Zhang Houjue - 2020 - In Shixi You, Jianfeng Zou, Xu Li & Konghui Mu (eds.), Bei fang Wang men ji. Shanghai: Shanghai gu ji chu ban she.
     
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  48.  4
    Xue shu sheng ming yu sheng ming xue shu: Zhang Liwen xue shu zi shu = Xueshu shengming yu shengming xueshu.Liwen Zhang - 2016 - Beijing: Zhongguo ren min da xue chu ban she.
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  49.  5
    Human dignity in classical Chinese philosophy: Confucianism, Mohism, and Daoism.Qianfan Zhang - 2016 - New York: Palgrave-Macmillan.
    This book reinterprets classical Chinese philosophical tradition along the conceptual line of human dignity. Through extensive textual evidence, it illustrates that classical Confucianism, Mohism and Daoism contained rich notions of dignity, which laid the foundation for human rights and political liberty in China, even though, historically, liberal democracy failed to grow out of the authoritarian soil in China. The book critically examines the causes that might have prevented the classical schools from developing a liberal tradition, while affirming their positive contributions (...)
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  50.  19
    A philosophical enquiry into the nature of Suhrawardī's illuminationism: light in the cave.Tianyi Zhang - 2023 - Boston: Brill.
    Tianyi Zhang offers in this study an innovative philosophical reconstruction of Shihāb al-Dīn al-Suhrawardī's (d. 1191) Illuminationism. Commonly portrayed as either a theosophist or an Avicennian in disguise, Suhrawardīappears here as an original and hardheaded philosopher who adopts mysticism only as a tool of philosophical inquiry. Zhang makes use of Plato's cave allegory to explain Suhrawardī's Illuminationist project. Focusing on three areas-the theory of presential knowledge, the ontological discussion of mental considerations, and Light Metaphysics-Zhang convincingly reveals the (...)
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