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revised Is there any efficient way than rbind.fill(list)?
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comment Is there any efficient way than rbind.fill(list)?
@Arun Thank you for your answer. I just want to note that related to this bug I had to download newer version (1.8.9). But still t1 and t2 are not still identical. t1 has factor and char type columns where t2 has only factor columns
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asked Is there any efficient way than rbind.fill(list)?