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what is different from this syntax on JPA

q.setMerchant(em.find(Merchant.class, m.getId()));

between

q.getMerchant.setId(m.getId());
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2 Answers 2

up vote 2 down vote accepted

In the first case, the Merchant object becomes an attached entity and in the second case if it is not already attached it stays detached.

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so in case 2, if i dont write these code : q.setmerchant(getMerchant()); , the id will return null. is it right? –  Diaz Pradiananto Jan 31 '12 at 6:56
    
if you dont set the Merchant object then the q.getMerchant() might return null and the q.getMerchant().setId(m.getId()) may throw a NullPointerException. –  prajeesh kumar Jan 31 '12 at 16:34

Your first example sets the merchant of q to the merchant found with the I'd m.getId() . Your second example retrieves the merchant returned from the call to q and then sets it's id to m.getId() . It does NOT set the merchant on q to the merchant identified my m.getId()

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i see.. so we have to set q.setmerchant(getMerchant()) first before we set the id. thanks –  Diaz Pradiananto Jan 31 '12 at 6:57

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