6. That in a right-angled triangle the☐ on the hypotenuse is equal to the sum of the Os on the other two sides. (I. 47.) E Let A B be a straight line, bisected at C, and divided into two unequal parts at D. We have to prove that the on AD together with the on DB is equal to twice the twice the on AC together with on CD. From C draw CE at rights to AB, and cut off CE equal to CA or CB. Join A and E, and E and B. Through D draw DF parallel to CE, and meeting E B in the point F. Through F draw FG parallel to AB, meeting CE in G. The first portion of the proof consists in showing with regard to this figure : 1. To prove that A EF is a right ▲ :— CA is equal to CE, therefore the CEA is equal to the CAE. (I. 5.) The threes of the ▲ ACE are together equal to two rights (I. 32) and ACE is a right <, therefore CAE and CE A are together equal to one right Z. Consequently, as the s CAE and CEA are equal to each other, CEA is half a right . In a similar way it may be shown that CEB is half a right . It follows, therefore, that A E B (that is, AEF) is a right <. 2. To prove that ADF is a right ▲ :— The parallels EC and FD are intersected by CD; therefore the two s GCD and CDF are together equal to two rights. GCD is a right ▲, therefore FDC is a right Z. 3. To prove that GE is equal to G F: The straight line EC intersects the parallel straight lines GF and CD, therefore the EGF is equal to the GCD. (I. 29.) But GCD is a right, therefore E G F is a right ▲· In the ▲ EGF the threes are together equal to two rights; EGF is a right, and GEF is half a right; consequently, the GFE is half a right <, and is equal to the It follows, therefore (I. 4. To prove that DF is The threes of the GEF. 6), that GE is equal to GF. equal to DB: ECB are together equal to two rights; ECB is a right, and CEB is half a right; therefore CBE (that is, DBF) is half a right : The straight line CB intersects the parallel lines FD and GC; therefore the FDB is equal to the LGCB. But GCB is a right, therefore FDB is a right. The threes of the AFDB are together equal to two rights. (I. 32.) FD B is a right, and DBF is half a right; consequently, the DFB is half a right, and is equal to the DBF. Because the DF is equal to D B. DFB is equal to the DBF, [The remainder of the proof depends upon the fact that AF is the hypotenuse of two right-angled As, namely, AEF and ADF; so that the sum of the s on AD and DF admits of being compared with the sum of the s on AE and EF. If this point is clearly kept in mind, the course of the proof will be easily remembered. It will be proved (5) that the on AF is equal to the sum of the s on AD and D F, or AD and DB; (6) that the on A F being equal to the sum of the Os on AE and E F, is also equal to twice the on A C, together with twice the☐ on CD; whence it follows (7) that the sum of the s on AD and D B is equal to twice the ☐ on AC together with twice the on CD.] 5. To prove that the☐ on AF is equal to the sum of thes on A D and DB: ADF is a right, therefore the on A F is equal to the sum of the s on AD and D F. But D F is equal to D B, therefore the on DF is equal to the on D B. Consequently, the sum of thes on AD and D F is equal to the sum of the s on A D and D B; and therefore the on A Fis equal to the sum of the s on AD and D B. 6. To prove that the on AF is equal to twice the on A C, together with twice the ☐ on CD :— the The AEF is a right, therefore in the ▲ AEF on AF is equal to the sum of the and EF. (I. 47.) s on A E But in the ▲ ACE the ACE is a right, therefore the on A E is equal to the sum of the 8 on A C and CE. But AC is equal to CE (by construction), therefore the on A C is equal to the on CE. Consequently, the sum of the □s on A C and C E is equal to twice the on A C. Therefore the on A C. Again, in the therefore the on AE is equal to twice the EGF the EGF is a right ▲, on EF is equal to the sum of the on EG and GF, and therefore to twice the☐ on G F, because GF is equal to G E. s But G F and CD are equal, being opposite sides of the parallelogram G D (I. 34); therefore twice the on GF is equal to twice the on CD; and, consequently, the on EF is equal to twice the on CD. on A F is equal to twice the ☐ on CD. on A F is equal to It follows, therefore, that the twice the on A C, together with 7. It has been proved that the the sum of the s on AD and D B, the and also to twice on AC together with twice the on CD. It follows, therefore, that the sum of the Os on AD and D B is equal to twice the on AC together with twice the on CD. PROPOSITION X. If a straight line be bisected and produced to any point, the square on the whole line thus formed together with the square on the produced part, is equal to twice the square on half the line together with twice the square on the line made up of the half and the part produced. A The propositions required for the construction and proof in this proposition are the same as in the last. E Let A B be a right line bisected in C, and produced to D. We have to prove that on AD together with the B Dthe F on DB, is equal to twice the on A C, together with twice the on CD. From C draw CE perpendicular to A B, and cut off CE equal to AC or C B. Join A and E, and B and E. Through E draw EG parallel to A B, and through D draw DG parallel to E C, meeting E G in G. Because E C and GD are parallel and E G intersects them, the s CEG and EGD are together equal to two rights. (I. 29.) Therefore the s B E G and EGD are together less than two rights; and consequently the lines EB and G D will meet if produced. Produce them, and let them meet in the point F. Join A and F. The proof of this proposition is step for step, and almost word for word, the same as that of the last. 2. That ADF is a right 3. That GE is equal to GF. 4. That D F is equal to D B. 5. That the AD and D B. 6. That the on A F is equal to the sum of the Os on on AF is equal to twice the on A C, together with twice the on CD. ̈ ། 7. Whence it follows, lastly, that the sum of the s on AD and DB is equal to twice the on AC together with twice the on CD. 1. To prove that A EF is a right ▲: In the ▲ A CE, AC and CE are equal, therefore the 8 CAE and CE A are equal. And because the threes of the ▲ ACE are together equal to two rights, and ACE is a right, it follows that CAE and CEA are together equal to a right, and therefore CEA is half a right . In a similar manner it may be proved that the CEB is half a right Consequently, A EF is a right 2. 2. To prove that ADF is a right In the parallelogram C G the opposite s ECD and EGD are equal (I. 34); therefore E G D is a right . |