我使用Symfony3和表单。我有一个formType,我想测试它。 我按照这篇文章: http://symfony.com/doc/current/form/unit_testing.html
我的formType如下:
namespace AppBundle\Form;
use Symfony\Component\Form\AbstractType;
use Symfony\Component\Form\Extension\Core\Type\IntegerType;
use Symfony\Component\Form\Extension\Core\Type\TextType;
use Symfony\Component\Form\FormBuilderInterface;
use Symfony\Component\Validator\Constraints\GreaterThanOrEqual;
use Symfony\Component\Validator\Constraints\Length;
use Symfony\Component\Validator\Constraints\NotBlank;
use Symfony\Component\Validator\Constraints\Required;
class UserType extends AbstractType
{
public function buildForm(FormBuilderInterface $builder, array $aOption)
{
$builder->add('name', TextType::class, array(
'constraints' => array(
new NotBlank(),
new Length(array('min' => 3)),
),
))
->add('age', IntegerType::class, array(
'constraints' => array(
new GreaterThanOrEqual(array('value' => 18)),
new Required()),
));
}
}
名称必须超过3个字符且年龄必须大于18。 我想用phpunit测试,提交无效数据。 I submut的年龄无效,因为它小于18,并且名称无效,因为它包含1个char。我的测试类如下:
namespace Tests\AppBundle\Controller;
use AppBundle\Form\UserType;
use Symfony\Component\Form\Test\TypeTestCase;
use Symfony\Component\Form\Extension\Validator\ValidatorExtension;
use Symfony\Component\Form\Form;
use Symfony\Component\Validator\ConstraintViolationList;
use Symfony\Component\Validator\Mapping\ClassMetadata;
use Symfony\Component\Validator\Validator\ValidatorInterface;
class UserTypeTest extends TypeTestCase
{
private $validator;
protected function getExtensions()
{
$this->validator = $this->createMock(ValidatorInterface::class);
// use getMock() on PHPUnit 5.3 or below
// $this->validator = $this->getMock(ValidatorInterface::class);
$this->validator
->method('validate')
->will($this->returnValue(new ConstraintViolationList()));
$this->validator
->method('getMetadataFor')
->will($this->returnValue(new ClassMetadata(Form::class)));
return array(
new ValidatorExtension($this->validator),
);
}
public function testIndex()
{
$formData = array(
'name' => 'a',
'age' => '4'
);
$formBuilder = $this->factory->createBuilder(UserType::class);
$form = $formBuilder->getForm();
$form->submit($formData);
$this->assertTrue($form->isSynchronized());
$this->assertFalse($form->isValid());
}
}
当我想运行无效数据提交的测试时,我失败了:
./vendor/bin/phpunit tests/AppBundle/Controller/UserTypeTest.php
Failed asserting that true is false.
为什么表单始终有效?
答案 0 :(得分:1)
您的表单始终有效,因为new ConstraintViolationList()为空。
我建议你用以下方法替换你的UserTypeTest :: getExtensions()方法:
public function getExtensions()
{
$extensions = parent::getExtensions();
$metadataFactory = new FakeMetadataFactory();
$metadataFactory->addMetadata(new ClassMetadata( Form::class));
$validator = $this->createValidator($metadataFactory);
$extensions[] = new CoreExtension();
$extensions[] = new ValidatorExtension($validator);
return $extensions;
}
protected function createValidator(MetadataFactoryInterface $metadataFactory, array $objectInitializers = array())
{
$translator = new IdentityTranslator();
$translator->setLocale('en');
$contextFactory = new ExecutionContextFactory($translator);
$validatorFactory = new ConstraintValidatorFactory();
return new RecursiveValidator($contextFactory, $metadataFactory, $validatorFactory, $objectInitializers);
}
使用此ValidatorExtension,您应该没有空ConstraintViolationList