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Problem of the week no6

E
Eduardo Enrique Escamilla Saldaña

The document presents a problem to find the minimum possible value of a summation involving positive numbers a1, a2, ..., an and a permutation i1, i2, ..., in of 1,2,...,n. It is shown that the minimum occurs when the numbers are ordered from smallest to largest and paired in the summation accordingly. Applying a lemma, the minimum value is proven to be n.

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Problem of the Week No.6 Eduardo Enrique Escamilla Saldaña March 2 2014. Monterrey, Nuevo León, México Let 𝑎1 , 𝑎2 , … , 𝑎 𝑛 be positive numbers. Find the smallest possible value of 𝑛 ∑ 𝑘=1 𝑎𝑘 𝑎𝑖 𝑘 Where 𝑖1 , 𝑖2 , … , 𝑖 𝑛 is a permutation of 1,2, … , 𝑛. Lemma: For all 𝑎 𝑖 > 0 𝑎𝑛𝑑 𝑖 ≠ 𝑗: 𝑎𝑗 𝑎𝑖 + ≥2 𝑎𝑗 𝑎𝑖 Proof: 2 (𝑎 𝑖 − 𝑎 𝑗 ) ≥ 0 ∴ 𝑎 𝑖 2 − 2𝑎 𝑖 𝑎 𝑗 + 𝑎 2 ≥ 0 𝑖 ∴ 𝑎 𝑖 2 + 𝑎 2 ≥ 2𝑎 𝑖 𝑎 𝑗 𝑖 Dividing both sides by 𝑎 𝑖 𝑎 𝑗 > 0 yields: 𝑎𝑗 𝑎 𝑖 2 + 𝑎2 𝑎𝑖 𝑖 = + ≥2 𝑎 𝑖 𝑎𝑗 𝑎𝑗 𝑎𝑖 As desired. Without loss of generalization let 𝑎1 ≤ 𝑎2 ≤ ⋯ ≤ 𝑎 𝑛 Equivalently: 1 1 1 ≤ ≤⋯≤ 𝑎𝑛 𝑎 𝑛−1 𝑎1 Then 𝑛 ∑ 𝑘=1 𝑎𝑘 𝑎𝑖 𝑘 Is minimal when every term in the two inequalities are multiplied pairwise in the same order i.e.
𝐴 = 𝑎1 ∗ 1 1 1 + 𝑎2 ∗ + ⋯+ 𝑎 𝑛 ∗ 𝑎𝑛 𝑎 𝑛−1 𝑎1 For if one changes any two terms in the arrangement say, 𝑎 𝑝 ≤ 𝑎 𝑞 then: If 𝐴 = 𝑎1 ∗ 1 1 1 1 + ⋯+ 𝑎 𝑝 ∗ +⋯+ 𝑎𝑞 ∗ + ⋯+ 𝑎 𝑛 ∗ 𝑎𝑛 𝑎 𝑛−𝑝+1 𝑎 𝑛−𝑞+1 𝑎1 𝐵 = 𝑎1 ∗ 1 1 1 1 +⋯+ 𝑎𝑞 ∗ + ⋯+ 𝑎 𝑝 ∗ + ⋯+ 𝑎 𝑛 ∗ 𝑎𝑛 𝑎 𝑛−𝑝+1 𝑎 𝑛−𝑞+1 𝑎1 Permuting 𝑎 𝑝 , 𝑎 𝑞 gives But 𝐵− 𝐴 = 𝑎𝑞∗ 1 1 1 1 1 1 + 𝑎𝑝∗ − 𝑎𝑝∗ − 𝑎𝑞∗ = (𝑎 𝑝 − 𝑎 𝑞 )( − )≥0 𝑎 𝑛−𝑝+1 𝑎 𝑛−𝑞+1 𝑎 𝑛−𝑝+1 𝑎 𝑛−𝑞+1 𝑎 𝑛−𝑞+1 𝑎 𝑛−𝑝+1 So the sum 𝐴 is minimal since its status as the smallest value is invariant under any perturbation in the arrangement of its terms. Therefore the minimal sum is 𝐴 = 𝑎1 ∗ (𝑎1 ∗ 1 1 1 + 𝑎2 ∗ + ⋯+ 𝑎 𝑛 ∗ 𝑎𝑛 𝑎 𝑛−1 𝑎1 1 1 1 1 1 1 1 + 𝑎 𝑛 ∗ ) + (𝑎2 ∗ + 𝑎 𝑛−1 ∗ ) + ⋯ + (𝑎 𝑖 ∗ + 𝑎 𝑛−𝑖+1 ∗ ) + ⋯ + 𝑎 𝑛+1 ∗ , 𝑎𝑛 𝑎1 𝑎 𝑛−1 𝑎2 𝑎 𝑛−𝑖+1 𝑎𝑖 𝑎 𝑛+1 2 𝑛 𝑜𝑑𝑑 2 = (𝑎1 ∗ { 1 1 1 1 1 1 1 1 + 𝑎 𝑛 ∗ ) + (𝑎2 ∗ + 𝑎 𝑛−1 ∗ ) + ⋯ + (𝑎 𝑖 ∗ + 𝑎 𝑛−𝑖+1 ∗ ) + ⋯ + (𝑎 𝑛 ∗ + 𝑎 𝑛+1 ∗ ), 𝑒𝑣𝑒𝑛 𝑎𝑛 𝑎1 𝑎 𝑛−1 𝑎2 𝑎 𝑛−𝑖+1 𝑎𝑖 𝑎 𝑛+1 𝑎𝑛 2 2 2 Applying the lemma we have that for 𝑛 𝑜𝑑𝑑 there are exactly plus the constant 𝑎 𝑛+1 ∗ 2 1 𝑎 𝑛+1 𝑛−1 terms with the property that 2 𝑎𝑗 𝑎𝑖 + ≥2 𝑎𝑗 𝑎𝑖 = 1 implying that for this case 2 𝐴≥2∗ 𝑛−1 +1= 𝑛 2 𝑛 Similarly for 𝑛 𝑒𝑣𝑒𝑛 there are exactly terms with the property that 2 𝑎𝑗 𝑎𝑖 + ≥2 𝑎𝑗 𝑎𝑖 So 𝐴≥2∗ 𝑛 = 𝑛 2 Therefore the smallest possible value for 𝑛 ∑ 𝑘=1 𝑎𝑘 𝑎𝑖 𝑘 2
Where 𝑖1 , 𝑖2 , … , 𝑖 𝑛 is a permutation of 1,2, … , 𝑛 is 𝑛 Provided that all the terms are positive.

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Problem of the week no6

  • 1. Problem of the Week No.6 Eduardo Enrique Escamilla Saldaña March 2 2014. Monterrey, Nuevo León, México Let 𝑎1 , 𝑎2 , … , 𝑎 𝑛 be positive numbers. Find the smallest possible value of 𝑛 ∑ 𝑘=1 𝑎𝑘 𝑎𝑖 𝑘 Where 𝑖1 , 𝑖2 , … , 𝑖 𝑛 is a permutation of 1,2, … , 𝑛. Lemma: For all 𝑎 𝑖 > 0 𝑎𝑛𝑑 𝑖 ≠ 𝑗: 𝑎𝑗 𝑎𝑖 + ≥2 𝑎𝑗 𝑎𝑖 Proof: 2 (𝑎 𝑖 − 𝑎 𝑗 ) ≥ 0 ∴ 𝑎 𝑖 2 − 2𝑎 𝑖 𝑎 𝑗 + 𝑎 2 ≥ 0 𝑖 ∴ 𝑎 𝑖 2 + 𝑎 2 ≥ 2𝑎 𝑖 𝑎 𝑗 𝑖 Dividing both sides by 𝑎 𝑖 𝑎 𝑗 > 0 yields: 𝑎𝑗 𝑎 𝑖 2 + 𝑎2 𝑎𝑖 𝑖 = + ≥2 𝑎 𝑖 𝑎𝑗 𝑎𝑗 𝑎𝑖 As desired. Without loss of generalization let 𝑎1 ≤ 𝑎2 ≤ ⋯ ≤ 𝑎 𝑛 Equivalently: 1 1 1 ≤ ≤⋯≤ 𝑎𝑛 𝑎 𝑛−1 𝑎1 Then 𝑛 ∑ 𝑘=1 𝑎𝑘 𝑎𝑖 𝑘 Is minimal when every term in the two inequalities are multiplied pairwise in the same order i.e.
  • 2. 𝐴 = 𝑎1 ∗ 1 1 1 + 𝑎2 ∗ + ⋯+ 𝑎 𝑛 ∗ 𝑎𝑛 𝑎 𝑛−1 𝑎1 For if one changes any two terms in the arrangement say, 𝑎 𝑝 ≤ 𝑎 𝑞 then: If 𝐴 = 𝑎1 ∗ 1 1 1 1 + ⋯+ 𝑎 𝑝 ∗ +⋯+ 𝑎𝑞 ∗ + ⋯+ 𝑎 𝑛 ∗ 𝑎𝑛 𝑎 𝑛−𝑝+1 𝑎 𝑛−𝑞+1 𝑎1 𝐵 = 𝑎1 ∗ 1 1 1 1 +⋯+ 𝑎𝑞 ∗ + ⋯+ 𝑎 𝑝 ∗ + ⋯+ 𝑎 𝑛 ∗ 𝑎𝑛 𝑎 𝑛−𝑝+1 𝑎 𝑛−𝑞+1 𝑎1 Permuting 𝑎 𝑝 , 𝑎 𝑞 gives But 𝐵− 𝐴 = 𝑎𝑞∗ 1 1 1 1 1 1 + 𝑎𝑝∗ − 𝑎𝑝∗ − 𝑎𝑞∗ = (𝑎 𝑝 − 𝑎 𝑞 )( − )≥0 𝑎 𝑛−𝑝+1 𝑎 𝑛−𝑞+1 𝑎 𝑛−𝑝+1 𝑎 𝑛−𝑞+1 𝑎 𝑛−𝑞+1 𝑎 𝑛−𝑝+1 So the sum 𝐴 is minimal since its status as the smallest value is invariant under any perturbation in the arrangement of its terms. Therefore the minimal sum is 𝐴 = 𝑎1 ∗ (𝑎1 ∗ 1 1 1 + 𝑎2 ∗ + ⋯+ 𝑎 𝑛 ∗ 𝑎𝑛 𝑎 𝑛−1 𝑎1 1 1 1 1 1 1 1 + 𝑎 𝑛 ∗ ) + (𝑎2 ∗ + 𝑎 𝑛−1 ∗ ) + ⋯ + (𝑎 𝑖 ∗ + 𝑎 𝑛−𝑖+1 ∗ ) + ⋯ + 𝑎 𝑛+1 ∗ , 𝑎𝑛 𝑎1 𝑎 𝑛−1 𝑎2 𝑎 𝑛−𝑖+1 𝑎𝑖 𝑎 𝑛+1 2 𝑛 𝑜𝑑𝑑 2 = (𝑎1 ∗ { 1 1 1 1 1 1 1 1 + 𝑎 𝑛 ∗ ) + (𝑎2 ∗ + 𝑎 𝑛−1 ∗ ) + ⋯ + (𝑎 𝑖 ∗ + 𝑎 𝑛−𝑖+1 ∗ ) + ⋯ + (𝑎 𝑛 ∗ + 𝑎 𝑛+1 ∗ ), 𝑒𝑣𝑒𝑛 𝑎𝑛 𝑎1 𝑎 𝑛−1 𝑎2 𝑎 𝑛−𝑖+1 𝑎𝑖 𝑎 𝑛+1 𝑎𝑛 2 2 2 Applying the lemma we have that for 𝑛 𝑜𝑑𝑑 there are exactly plus the constant 𝑎 𝑛+1 ∗ 2 1 𝑎 𝑛+1 𝑛−1 terms with the property that 2 𝑎𝑗 𝑎𝑖 + ≥2 𝑎𝑗 𝑎𝑖 = 1 implying that for this case 2 𝐴≥2∗ 𝑛−1 +1= 𝑛 2 𝑛 Similarly for 𝑛 𝑒𝑣𝑒𝑛 there are exactly terms with the property that 2 𝑎𝑗 𝑎𝑖 + ≥2 𝑎𝑗 𝑎𝑖 So 𝐴≥2∗ 𝑛 = 𝑛 2 Therefore the smallest possible value for 𝑛 ∑ 𝑘=1 𝑎𝑘 𝑎𝑖 𝑘 2
  • 3. Where 𝑖1 , 𝑖2 , … , 𝑖 𝑛 is a permutation of 1,2, … , 𝑛 is 𝑛 Provided that all the terms are positive.