For let the parallelogram ABCD have the same base BC with the triangle EBC, and let it be in the same parallels BC, AE;

I say that the parallelogram ABCD is double of the triangle BEC.

For let AC be joined.

Then the triangle ABC is equal to the triangle EBC; for it is on the same base BC with it and in the same parallels BC, AE. I.37

But the parallelogram ABCD is double of the triangle ABC;

• for the diameter AC bisects it; I.34

  so that the parallelogram ABCD is also double of the triangle EBC.

Therefore etc.

• Q. E. D.

References