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,
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,
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,
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1 citations
,
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,
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7 citations
,
March 2024 in “Biomedical Engineering Letters” 1 citations
,
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8 citations
,
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,
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,
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46 citations
,
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,
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11 citations
,
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2 citations
,
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15 citations
,
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5 citations
,
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,
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11 citations
,
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9 citations
,
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48 citations
,
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85 citations
,
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8 citations
,
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17 citations
,
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