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Direction, evidence grade, and study type are AI-generated labels (gpt-5-mini), not human-verified. Syntheses are LLM-written. "Tensions" are machine-detected candidates, not confirmed contradictions. A research-acceleration tool, not peer review. How this is built →
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Talal H. Alsabhan

Provider-ID corpus identity

1Distinct papers
3Unique collaborators
1/1Semantic Scholar citation coverage

Publication dates unavailable. Corpus fetch span: 2026.

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Identity provenance

Provider IDs

  • Semantic Scholar: 2322244257

ORCID evidence

No valid ORCID is stored.

Observed aliases (1)
  • Talal H. Alsabhan (semantic scholar, provider refresh)

Topics and outcomes in this view

Assessment themes

  • Adoption: 1 paper
  • Innovation: 1 paper

Claim outcomes

Papers in the Semantic Scholar view

Latest stored Semantic Scholar author observations only. Citation counts below are from the same provider and are not combined with other services.

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Talal H. Alsabhan's distinct papers under the selected provider observation surface.
PaperAuthor evidenceDateProvider citations
Green spending by polluting Chinese firms is linked to higher stock returns, driven in part by green patents; firms that adopt AI see an even stronger market reward.semantic_scholar Talal H. Alsabhan
provider id
Fetched 2026-07-20 0

Citation observation summary

Semantic Scholar supplied counts for 1 of 1 papers in this view; 0 are missing. The observed paper counts sum to 0 cumulative citations. This is a coverage summary, not an author score or h-index.