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Related Concept Videos

Attribution Theory00:56

Attribution Theory

13.7K
Behavior is a product of both the situation (e.g., cultural influences, social roles, and the presence of bystanders) and of the person (e.g., personality characteristics). Subfields of psychology tend to focus on one influence or behavior over others. Situationism is the view that our behavior and actions are determined by our immediate environment and surroundings. In contrast, dispositionism holds that our behavior is determined by internal factors (Heider, 1958).
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Fundamental Attribution Error01:14

Fundamental Attribution Error

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According to some social psychologists, people tend to overemphasize internal factors as explanations—or attributions—for the behavior of other people. They tend to assume that the behavior of another person is a trait of that person, and to underestimate the power of the situation on the behavior of others. They tend to fail to recognize when the behavior of another is due to situational variables, and thus to the person’s state. This erroneous assumption is...
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Attribution01:26

Attribution

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In social interactions, individuals frequently seek to understand the motivations and causes behind others' behaviors. This fundamental aspect of social perception, known as attribution, plays a crucial role in shaping interpersonal relationships and guiding future actions. Attribution refers to the cognitive process through which people infer the reasons behind others' behaviors, allowing them to assess character traits, intentions, and situational influences.Attribution Theory and Its...
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Personal Choice and Fate Attributions01:19

Personal Choice and Fate Attributions

164
Some individuals interpret life events as a consequence of their personal choices and actions, while others believe that outcomes are dictated by fate or destiny. This divergence in perspective has been examined in psychological and cross-cultural studies, particularly in relation to religious faith and cultural beliefs about causality.Fate and Personal ResponsibilityPeople who emphasize personal responsibility view events as direct consequences of their decisions. For instance, breaking a leg...
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Interpreting R Charts01:22

Interpreting R Charts

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R chart, or range chart, is a fundamental tool in statistical process control used to monitor the variability within a process. It complements the X-bar (x̄) chart by focusing on the range of the data, rather than individual values, providing a clear picture of the process dispersion over time.
An R chart plots the range of subsets of measurements collected from a process. Each point on the chart represents the range—defined as the difference between the maximum and minimum...
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pH Scale02:41

pH Scale

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Hydronium and hydroxide ions are present both in pure water and in all aqueous solutions, and their concentrations are inversely proportional as determined by the ion product of water (Kw). The concentrations of these ions in a solution are often critical determinants of the solution’s properties and the chemical behaviors of its other solutes. Two different solutions can differ in their hydronium or hydroxide ion concentrations by a million, billion, or even trillion times. A common means of...
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Summit: Scaling Deep Learning Interpretability by Visualizing Activation and Attribution Summarizations.

Fred Hohman, Haekyu Park, Caleb Robinson

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    This summary is machine-generated.

    Summit provides a scalable, interactive system to visualize deep learning model features and their interactions. This helps understand complex neural networks by summarizing learned representations for better insights and model design.

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    Area of Science:

    • Artificial Intelligence
    • Machine Learning
    • Computer Vision

    Background:

    • Deep learning models are widely used but their decision-making processes are often opaque.
    • Existing interpretation methods for neural networks typically focus on individual components, missing a holistic view.
    • Understanding learned features and their interactions is crucial for reliable AI systems.

    Purpose of the Study:

    • To develop a scalable and systematic method for interpreting deep learning models.
    • To visualize what features deep learning models learn and how they interact to produce predictions.
    • To provide insights into complex neural network representations and inform architecture design.

    Main Methods:

    • Introduced Summit, an interactive system for summarizing and visualizing deep learning model features.
    • Developed two scalable summarization techniques: activation aggregation and neuron-influence aggregation.
    • Created a novel attribution graph to reveal crucial neuron associations and substructures.

    Main Results:

    • Summit effectively scales to large datasets like ImageNet (1.2M images).
    • The attribution graph summarizes complex neural network behaviors into compact, interactive visualizations.
    • Exploration scenarios revealed surprising insights into image classifier representations.

    Conclusions:

    • Summit offers a powerful tool for understanding and debugging large-scale deep learning models.
    • The system aids in discovering learned representations and guiding future neural network architecture improvements.
    • Summit is open-source and accessible via modern web browsers.